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Energy & Economics
To achieve sustainable environmental conservation, we must prioritize clean energy solutions to reduce our dependence on fossil fuels and promote a sustainable future for future generations.

Harnessing nuclear power for sustainable electricity generation and achieving zero emissions

by Mohamed Khaleel , Ziyodulla Yusupov , Sassi Rekik , Heybet Kılıç , Yasser F. Nassar , Hala J. El-Khozondar , Abdussalam Ali Ahmed

Note: some parts of the article have been excluded, if you want to go deep in the article please check  https://doi.org/10.1177/01445987251314504 for the complete version. Abstract Nuclear power plays a pivotal role in sustainable electricity generation and global net zero emissions, contributing significantly to this secure pathway. Nuclear power capacity is expected to double, escalating from 413 gigawatts (GW) in early 2022 to 812 GW by 2050 within the net zero emissions (NZE) paradigm. The global energy landscape is undergoing significant transformation as nations strive to transition to more sustainable energy systems. Amidst this shift, nuclear power has emerged as a crucial component in the pursuit of a sustainable energy transition. This study examines nuclear power's multifaceted role in shaping sustainable energy transition. It delves into nuclear energy's contributions toward decarbonization efforts, highlighting its capacity to provide low-carbon electricity and its potential role in mitigating climate change. Furthermore, the study explores the challenges and opportunities associated with integrating nuclear power into energy transition strategies, addressing issues such as safety, waste management, and public perception. In conclusion, the global nuclear power capacity is anticipated to reach approximately 530 GW by 2050, representing a substantial shortfall of 35% compared with the trajectory outlined in the NZE pathway. Under the NZE scenario, nuclear power demonstrates exceptional expansion, nearly doubling from 413 GW in early 2022 to 812 GW by 2050. Concurrently, the trajectory highlights a transformative shift in renewable energy investments, with annual expenditures surging from an average of US$325 billion during 2016–2020 to an impressive US$1.3 trillion between 2031 and 2035. These projections underscore the critical role of nuclear and renewable energy investments in achieving global sustainability and emission reduction goals. Introduction Global warming and greenhouse gas emissions pose some of the most pressing challenges of the 21st century. The combustion of fossil fuels for electricity generation is a major contributor to these issues, releasing billions of tons of carbon dioxide (CO2) into the atmosphere annually (Abbasi et al., 2020; Nassar et al., 2024; Rekik and El Alimi, 2024a). In this context, nuclear energy emerges as a critical component of the solution. Unlike fossil fuels, nuclear power generates electricity with minimal greenhouse gas emissions, offering a reliable and scalable alternative to bridge the gap between energy demand and decarbonization goals. It operates independently of weather conditions, providing consistent energy output and complementing the intermittency of renewable sources like wind and solar (Rekik and El Alimi, 2024b, 2024c). Furthermore, advancements in nuclear technologies, including small modular reactors (SMRs) and generation IV reactors, have addressed historical concerns related to safety, waste management, and cost-effectiveness (Lau and Tsai, 2023). In 2022, global investment in low-emission fuels will maintain a robust growth trajectory, reaching a sum of US$13 billion. A significant portion of this investment was allocated toward liquid biofuels, totaling US$9.4 billion, and biogas, amounting to US$2.7 billion. It is important to emphasize that liquid biofuels constituted approximately 80% of the overall investment surge observed in 2022, with investments in biogas contributing 4% of the total. The residual portion of the investment was directed toward low-emission hydrogen production, which attained a sum of US$1.2 billion in 2022, representing an almost fourfold increase compared to the figures recorded in 2021 (Khaleel et al., 2024).Nuclear power is a pivotal component of low-carbon energy, which significantly contributes to the realization of a low-carbon economy and establishment of a green energy grid (Arvanitidis et al., 2023; El Hafdaoui et al., 2024; Fragkos et al., 2021). According to current data, 442 nuclear power reactors are operational worldwide, collectively generating 393 gigawatts (GW) of electricity, thereby furnishing a consistent and dependable source of low-carbon power (Mathew, 2022). Nuclear electricity constitutes approximately 11% of the total global electricity generation, representing a substantial portion of the global low-carbon electricity production (Alam et al., 2019). Recent advancements have enhanced the affordability and appeal of nuclear power as an alternative source of energy. These advancements encompass progress in large reactor technologies, the emergence of novel approaches such as advanced fuel utilization and SMRs, engineering breakthroughs facilitating the extension of operational lifespans for existing reactors, and innovations in materials science and improved waste management practices (Kröger et al., 2020; Zhan et al., 2021). Fast breeder reactor technology has transitioned into a commercial realm, offering benefits beyond electricity generation by enabling the production of surplus fuel and enhancing the efficiency of nuclear waste incineration, surpassing the capabilities of existing commercial reactor technologies (Lau and Tsai, 2023). Nuclear power plays a substantial role within a secure global trajectory toward achieving net zero emissions (NZE) (Addo et al., 2023; Dafnomilis et al., 2023). Nuclear power capacity experiences a twofold increase, progressing from 413 GW at the outset of 2022 to 812 GW by 2050 within the NZE paradigm. It is apparent that the annual additions to nuclear capacity peaked at 27 GW per year during the 2030s, surpassing the levels observed in the preceding decade. Despite these advancements, the global proportion of nuclear power within the overall electricity generation portfolio has experienced a marginal decline, settling at 8% (Murphy et al., 2023; Ruhnau et al., 2023). Emerging and developing economies (EMDEs) substantially dominate global growth, constituting over 90% of the aggregate, with China poised to ascend as a preeminent nuclear power producer prior to 2030. Concurrently, advanced economies collectively witness a 10% augmentation in nuclear power capacity as retirements are counterbalanced by the commissioning of new facilities, predominantly observed in nations such as the United States, France, the United Kingdom, and Canada (Bórawski et al., 2024). Furthermore, annual global investment in nuclear power has experienced a notable escalation, soaring from US$30 billion throughout the 2010s to surpass US$100 billion by 2030, maintaining a robust trajectory above US$80 billion by 2050 (IEA, 2022). In 2022, global nuclear power capacity experienced a modest increase of approximately 1.5 GW, reflecting a marginal year-on-year growth of 0.3%. This expansion was primarily driven by new capacity additions that surpassed the retirement of an over 6 GW of existing capacity (Fernández-Arias et al., 2023; Mendelevitch et al., 2018). EMDEs accounted for approximately 60% of the new capacity additions, underscoring their increasing significance in the global nuclear energy landscape. Conversely, more than half of the retirements were observed in advanced economies, including Belgium, the United Kingdom, and the United States. Table 1 shows the nuclear power capacity by region in the NZE from 2018 to 2030.   In alignment with the Net Zero Scenario, it is imperative for the global nuclear capacity to undergo an expansion averaging approximately 15 GW per annum, constituting a growth rate slightly exceeding 3% annually, until 2030. This strategic augmentation is crucial for sustaining the contribution of the nuclear sector to electricity generation, maintaining its share at approximately 10% (Liu et al., 2023). Such an expansion necessitates concerted efforts in both advanced economies and EMDEs. Furthermore, prioritizing the extension of operational lifetimes of existing nuclear facilities within G7 member states would not only fortify the existing low-emission infrastructure, but also facilitate the integration of new nuclear capacity, thereby augmenting the overall nuclear energy portfolio. [...] The significant contribution of nuclear power to sustainable energy transitions is underscored by its multifaceted role in addressing the pressing challenges of climate change and energy security (Asif et al., 2024). As nations worldwide endeavor to shift toward greener energy systems, nuclear power has emerged as a critical pillar of the decarbonization journey. Its ability to provide low-carbon electricity, mitigate climate change impacts by 2050, and enhance energy security highlights its pivotal importance in the broader context of sustainable energy transitions (Bhattacharyya et al., 2023; NEA, 2015). Thus, to fully realize its potential, challenges such as safety, waste management, and public perception must be addressed effectively. By leveraging robust policy frameworks, technological advancements, and international collaboration, nuclear power is poised to play a vital role in shaping the future of sustainable energy transitions on a global scale. Furthermore, the dynamic landscape of nuclear power development is evident in the significant influence exerted by EMDEs, particularly China, which is expected to emerge as a leading nuclear power producer by 2030 (Fälth et al., 2021; Nkosi and Dikgang, 2021). Concurrently, advanced economies are witnessing notable expansions in nuclear power capacity driven by the commissioning of new facilities to offset retirements (Budnitz et al., 2018). This trend is further reinforced by a notable surge in annual global investment in nuclear power, underscoring the sustained commitment to nuclear energy's pivotal role in sustainable energy transitions in the foreseeable future (IEA, 2019). The primary objective of this article is to explore the strategic role of nuclear power in advancing global sustainability goals and achieving zero emissions. The objective is structured around the following key agendas: •Nuclear power: prominence and green electricity source•Nuclear's role in achieving net zero by 2050•Nuclear power's significance in power system adequacySpecific technologies for sustainability in nuclear energy production•Investment in nuclear power•Addressing policy implications This comprehensive analysis aims to provide actionable insights into harnessing nuclear power for sustainable electricity generation and its pivotal role in achieving global zero-emission targets. Data and methodology This article conducts an in-depth analysis of the role of nuclear power in achieving sustainable electricity generation and supporting NZE targets. The article also addresses the potential of nuclear energy as a prominent and environmentally favorable electricity source, examining nuclear power's contribution toward the net zero by 2050 goal, its critical importance in ensuring power system adequacy, investment imperatives, and the broader policy implications.  [...] Nuclear power: prominence and green electricity source In 2020, nuclear power will constitute approximately 10% of the global electricity generation portfolio. This proportion, which had previously stood at 18% during the late 1990s, has experienced a decline; nonetheless, nuclear energy retains its status as the second-largest provider of low-emission electricity, trailing only hydroelectricity, and serves as the primary source within advanced economies. Despite the substantial proliferation of wind and solar PV technologies, nuclear electricity production in 2020 surpassed the aggregate output of these renewable sources. As of 2021, the global cumulative installed nuclear capacity has reached 413 GW, with 270 GW of this total being installed in advanced economies (Guidi et al., 2023; Halkos and Zisiadou, 2023; Pan et al., 2023; Zhang et al., 2022). Nuclear power generation during this period amounted to 2653 TWh, positioning it as the second largest source of electricity generation after hydropower, which generated 4275 TWh, as depicted in Figure 1.   In addition to its significant role in power generation, nuclear energy plays a crucial role in mitigating carbon dioxide (CO2) emissions. Since the 1970s, nuclear power has helped avoid the global release of approximately 66 gigatons (Gt) of CO2 globally, as shown in Figure 2.   Without the contribution of nuclear power, cumulative emissions from electricity generation would have increased by approximately 20%, whereas total energy-related emissions would have increased by 6% over this period (Wagner, 2021). Advanced economies accounted for more than 85% of these avoided emissions, with the European Union accounting for 20 Gt and the United States for 24 Gt, representing over 40% and 25% of total electricity generation emissions, respectively. In the absence of nuclear power, Japan would have experienced an estimated 25% increase in emissions from electricity generation, whereas Korea and Canada would have seen an increase of approximately 50%. Nuclear's role in achieving net zero by 2050 Nuclear energy has emerged as a pivotal low-emission technology within the trajectory toward achieving NZE (Pioro et al., 2019). In addition, it serves as a complementary force, bolstering the accelerated expansion of renewables, thereby facilitating the reduction of emissions from the global electricity sector to net zero by 2040 (Krūmiņš and Kļaviņš, 2023; Islam et al., 2024). Beyond its intrinsic contribution to fostering a low-emission electricity supply, nuclear power is significant as a dispatchable generating asset, fortifying supply security through its provision of system adequacy and flexibility. Furthermore, it is instrumental in furnishing heat for district heating networks and in selecting industrial facilities. Despite this, the prospective role of nuclear energy hinges significantly on the deliberations and determinations of policymakers and industry stakeholders concerning the pace of new reactor construction initiatives and the continued operational lifespan of existing nuclear facilities (Li et al., 2016; Li et al., 2015).In terms of the NZE trajectory, the global nuclear power capacity exhibits a remarkable surge, nearly doubling from 413 GW at the onset of 2022 to 812 GW by 2050 (Price et al., 2023; Utami et al., 2022). This augmentation primarily stems from the vigorous initiation of new construction endeavors, which effectively counterbalance the gradual decommissioning of numerous extant plants. Such an escalation constitutes a pronounced acceleration in comparison to the preceding three decades, characterized by a mere 15% increment in capacity, equivalent to approximately 60 GW (Haneklaus et al., 2023; Obekpa and Alola, 2023; Sadiq et al., 2023). Figure 3 demonstrates the nuclear power capacity within each country/region under the NZE by 2050 scenario.   The expected growth in nuclear power capacity far exceeds the path outlined by the current policies and legal frameworks. According to the Stated Policies Scenario (STEPS), the nuclear capacity is projected to reach approximately 530 GW by 2050, which is 35% lower than that of the NZE pathway (Espín et al., 2023; Nicolau et al., 2023; Nnabuife et al., 2023; Wang et al., 2023). Without a significant shift from recent nuclear power development trends, achieving NZE would require a limited reliance on a smaller range of low-emission technologies. This could compromise energy security and lead to higher total investment costs, resulting in increased electricity prices for consumers. Table 2 shows the average annual capacity addition for global nuclear power in NZE from 1981 to 2030.   In 2022, the global deployment of new nuclear power capacity witnessed a notable upsurge, with 7.9 GW added, representing a substantial 40% increase compared to the preceding year (Ho et al., 2019). It is worth bearing in mind that China spearheaded this expansion by completing the construction of two reactors, maintaining its streak for consecutive years as the leading contributor to global nuclear power capacity augmentation. It is noteworthy that the projects were successfully completed in various other nations, including Finland, Korea, Pakistan, and the United Arab Emirates. Additionally, significant strides were made in the initiation of new construction endeavors, with the commencement of construction activities on five reactors in China, two reactors in Egypt, and one reactor in Turkey (Hickey et al., 2021). Nuclear power's significance in power system adequacy Nuclear power facilities have persistently underpinned the dependability of power systems, thereby bolstering the adequacy of the system. Across diverse national contexts, nuclear power plants have historically maintained operational readiness, manifesting availability rates consistently exceeding 90%, thereby demonstrating their reliability in power generation. Given that a substantial proportion of nuclear power capacity directly contributes to system adequacy metrics, its significance in fortifying system reliability and adequacy significantly outweighs its proportional contribution to the total power capacity (Orikpete and Ewim, 2024; Frilingou et al., 2023; Raj, 2023; Ragosa et al., 2024). The contribution of nuclear power to system adequacy is demonstrated by the consistent trajectory of its share within the aggregate dispatchable power capacity, hovering at around 8% between 2021 and 2050 within the NZE framework (IEA, 2022; OIES, 2024). Dispatchable electricity sources have historically constituted the primary mechanism for ensuring system adequacy, a trend that endures within the NZE paradigm, especially as electricity systems undergo evolution marked by an escalating reliance on variable solar photovoltaic (PV) and wind energy sources (Marzouk, 2024; Moon et al., 2024; Wisnubroto et al., 2023). It is indisputable that unabated fossil fuel resources predominantly dominate dispatchable capacity; however, their prominence clearly diminishes, declining by a quarter by 2030 within the NZE framework and experiencing a precipitous decline thereafter. Unabated coal-fired power, currently the most substantial dispatchable source, anticipates a decline exceeding 40% in operational capacity by 2030 and approaches a state of negligible contribution by the early 2040s. Conversely, the unabated natural gas-fired power capacity exhibits a sustained level of stability until 2030, primarily driven by the necessity to offset the diminishing role of coal; nonetheless, it subsequently undergoes a rapid descent throughout the 2030s. Oil, constituting a comparatively minor contributor, experiences rapid phasing out across most regions, except for remote locales, within the delineated scenario (Makarov et al., 2023; Ren et al., 2024). Figure 4 highlights the global capacity of dispatchable power categorized by category in the scenario of achieving NZE by 2050.   In this context, fossil fuels equipped with Carbon Capture, Utilization, and Storage (CCUS) technology have emerged as notable contributors to bolstering system adequacy. Yet, nuclear power remains a steady contributor to the power system flexibility. In advanced economies, the proportion of hour-to-hour flexibility is projected to increase from approximately 2% to 5% by 2050. Similarly, in EMDEs, this ratio is anticipated to increase from 1% to 3% over the same temporal span (Jenkins et al., 2018). It is worth highlighting that in France, where nuclear power fulfills the lion's share of electricity generation requisites, flexibility has been ingrained within reactor designs (Ho et al., 2019). This feature enables certain plants to swiftly modulate their output to align with the fluctuating electricity supply and demand, operating in a load-following mode (Chen, 2024; Jin and Bae, 2023; Kanugrahan and Hakam, 2023). Although many nations have not habitually engaged nuclear power in such operational dynamics, a considerable number of reactors are capable of performing load-following operations with minimal or no requisite technical adaptations (Caciuffo et al., 2020). Figure 5 demonstrates the hour-to-hour power system flexibility based on the source and regional grouping in the NZE by the 2050 scenario.   Innovation holds promise in enhancing the flexibility of nuclear power. Advanced technological advancements, such as SMRs, can facilitate nuclear reactors to adjust their electricity output with greater ease, as illustrated in Figure 6 (Ho et al., 2019; Lee, 2024; Wisnubroto et al., 2023). Moreover, these technologies offer the prospect of enabling reactors to transition toward generating heat or producing hydrogen either independently or concurrently with electricity generation. Initiatives are underway to disseminate information to policymakers and planners regarding the potential cost advantages associated with enhancing nuclear power flexibility.  Figure 6 demonstrates the nuclear system augmented by wind turbines for trigeneration.   Investment in nuclear power The renaissance of nuclear power within the NZE trajectory necessitates a substantial surge in investment in the coming decades. This surge is envisaged to encompass the construction of new nuclear reactors and extension of operational lifespans for existing facilities. Within this scenario, annual global investment in nuclear power is poised to escalate to exceed US$100 billion during the initial half of the 2030s within the NZE framework, surpassing the threefold average investment level of US$30 billion recorded during the 2010s (IEA, 2022). Subsequently, investment levels are expected to gradually decline as the imperative for dispatchable low emissions generating capacity diminishes, tapering to approximately US$70 billion by the latter half of the 2040s (Kharitonov and Semenova, 2023; Zimmermann and Keles, 2023). Over the period spanning from 2021 to 2050, the allocation of investment toward nuclear power constitutes a fraction representing less than 10% of the aggregate investment dedicated to low-emission sources of electricity (IEA, 2022). By comparison, within this framework, the annual investment in renewable energy experiences a notable escalation, escalating from an average of US$325 billion during the interval from 2016 to 2020 to US$1.3 trillion during the period 2031–2035 (EEDP, 2023; Rekik and El Alimi, 2024d). It is worth noting that the latter consideration elucidates the rationale behind the disproportionate allocation of investment toward advanced economies in later decades. China, for instance, requires an annual expenditure averaging close to US$20 billion on nuclear infrastructure by 2050, representing a nearly twofold increase compared to the average observed during the 2010s (Aghahosseini et al., 2023; Vujić et al., 2012). Conversely, other EMDEs witness a tripling of investment, reaching approximately US$25 billion per year, on average. In contrast to advanced economies, the imperative for investment in these nations is more pronounced in the period leading up to 2035 (Bhattacharyya et al., 2023; Khaleel et al., 2024). Thus, nuclear energy, despite its advantages as a low-carbon energy source, faces notable challenges. High capital costs and long deployment timelines, driven by complex construction and regulatory requirements, often hinder its adoption. The management of radioactive waste remains a costly and contentious issue, while safety concerns, shaped by historical incidents, continue to influence public perception. Additionally, reliance on uranium, with its geographically concentrated supply, raises geopolitical and environmental concerns. Nuclear power also competes with the rapidly advancing and cost-effective renewable energy sector, while decommissioning aging plants poses long-term financial and logistical burdens. Addressing these limitations through advanced technologies, public engagement, and international collaboration is crucial for enhancing nuclear energy's role in sustainable energy transitions. Technologies for sustainability in nuclear energy production The pursuit of sustainability in nuclear energy production has been supported by advancements in innovative technologies that enhance efficiency, safety, and environmental compatibility (Aktekin et al., 2024; Ali et al., 2024; Zheng et al., 2024; Khan et al., 2017). These technologies are crucial for positioning nuclear power as a key contributor to clean and sustainable energy transitions. Below are some of the most impactful technologies in this domain: Advanced nuclear reactors: Small modular reactors (SMRs): SMRs are compact, scalable, and safer than traditional large-scale reactors. Their modular design allows for deployment in remote locations, making them suitable for decentralized energy systems. Generation IV reactors: These reactors incorporate advanced cooling systems and fuel cycles to improve efficiency, safety, and waste reduction. Examples include sodium-cooled fast reactors and gas-cooled fast reactors. Thorium-based reactors: Thorium fuel cycle reactors use thorium-232 as an alternative to uranium, offering a more abundant and sustainable fuel source. Thorium reactors produce less nuclear waste and have a lower risk of proliferation. Fusion energy: Although still in the experimental stage, nuclear fusion promises to be a game-changing technology. Fusion produces minimal radioactive waste and harnesses abundant fuel sources like deuterium and tritium, making it a virtually limitless and clean energy solution. Molten salt reactors (MSRs): MSRs use liquid fuels or coolants, such as molten salts, which operate at lower pressures and higher temperatures. These reactors are inherently safer and have the capability to utilize a variety of fuel types, including spent nuclear fuel and thorium. Reactor safety enhancements: Passive safety systems: These systems enhance reactor safety by using natural forces like gravity, natural convection, or condensation to cool the reactor core without human intervention. Digital twin technologies: Digital simulations and monitoring of reactor systems allow for predictive maintenance and real-time safety management. Nuclear waste management technologies Fast reactors: These reactors can recycle spent fuel, reducing the volume and radioactivity of nuclear waste. Deep geological repositories: Advances in geotechnical engineering have improved the safety of long-term waste storage in deep geological formations. Hybrid nuclear-renewable systems: Combining nuclear power with renewable energy sources like wind and solar can optimize energy production and grid stability. Hybrid systems leverage the reliability of nuclear energy with the intermittency of renewables for a balanced, low-carbon energy mix. Artificial intelligence (AI) and machine learning: AI and machine learning technologies are being deployed to enhance reactor performance, optimize fuel usage, and improve operational safety. Predictive analytics also play a critical role in maintenance and risk assessment. Fuel advancements: High-assay low-enriched uranium (HALEU): HALEU fuels enable reactors to operate more efficiently and reduce waste. Accident-tolerant fuels (ATFs): These are designed to withstand extreme conditions, reducing the likelihood of core damage during accidents. Integrated energy systems: Nuclear reactors are increasingly being used for purposes beyond electricity generation, such as hydrogen production, district heating, and desalination. The integration of digital technologies, including AI and machine learning, coupled with fuel advancements like HALEU and accident-tolerant fuels, highlights the continuous evolution of the nuclear sector. These innovations not only enhance efficiency and safety but also expand the applications of nuclear energy beyond electricity generation to include hydrogen production, desalination, and district heating. Despite these technological advancements, the sustainable deployment of nuclear energy requires robust policy frameworks, increased investments, and public acceptance. Addressing these challenges is critical to unlocking the full potential of nuclear power in achieving global energy security and NZE by 2050. [...] Discussion and policy implications Nuclear power presents a compelling case as a sustainable energy source owing to its several key advantages. Its high-energy density allows for substantial electricity generation from minimal fuel, enabling continuous operation, unlike intermittent renewables, such as solar and wind (Rekik and El Alimi, 2023a, 2023b), thus contributing significantly to grid stability (Cramer et al., 2023). Furthermore, nuclear power is a crucial tool for emissions reduction, boasting virtually no greenhouse gas emissions during operation. Although lifecycle emissions associated with fuel processing and plant construction exist, they remain comparable to or lower than those of renewables. Several studies have reported on the energy production capabilities of nuclear power and its contribution to reducing greenhouse gas emissions compared to other energy sources. A key aspect of these analyses is quantifying the potential contribution of nuclear power to reducing greenhouse gas emissions and achieving net zero targets. However, direct comparison of reported data can be challenging due to variations in model assumptions, geographic scope, and time horizons.  [...] From another perspective, radioactive waste generation poses a significant challenge to nuclear power because of its long-term hazardous nature. This necessitates meticulous management and disposal strategies to mitigate potential social impacts. These impacts arise from perceived or actual risks to human health and the environment, fueling public anxiety and opposition to nuclear power, which is often expressed through protests and legal action (Kyne and Bolin, 2016; Nilsuwankosit, 2017; Ram Mohan and Namboodhiry, 2020). Additionally, communities near waste sites can experience stigmatization, resulting in decreased property values and social isolation. The persistent nature of radioactive waste also raises intergenerational equity issues, burdening future generations with its management (Deng et al., 2020; Mason-Renton and Luginaah, 2019). Thus, transparent communication and stakeholder engagement are crucial for building public trust and ensuring responsible radioactive waste management (Dungan et al., 2021; Sančanin and Penjišević, 2023). There are various radioactive waste disposal pathways, each with unique social and technical considerations. Deep geological disposal, an internationally favored method for high-level waste disposal, involves burying waste deep underground for long-term isolation. Interim storage provides a secure temporary holding until a permanent solution is obtained (Chapman, 1992; Grambow, 2022). Reprocessing spent nuclear fuel recovers reusable materials, reducing high-level waste but creating lower-level waste. Advanced reactor technologies aim to minimize waste and improve safety, potentially converting long-lived isotopes into shorter-lived isotopes (Dixon et al., 2020; Englert and Pistner, 2023). Choosing a disposal pathway requires careful evaluation of factors, such as waste type and volume, geology, feasibility, cost, and public acceptance, often leading to a combined approach. Ongoing community engagement and addressing concerns are essential to safe and responsible waste management. Effective management and disposal of this waste require advanced technological solutions, robust regulatory frameworks, and long-term planning to ensure safety and sustainability (Abdelsalam et al., 2024; Rekik and El Alimi, 2024a), Moreover, its relatively small land footprint compared to other energy sources, especially solar and wind farms, minimizes the ecosystem impact and makes it a sustainable option in densely populated areas (Poinssot et al., 2016; Sadiq et al., 2022). Nuclear power also enhances energy security by reducing reliance on fossil fuels, which is particularly valuable in countries with limited domestic resources (Cramer et al., 2023; Ichord Jr., 2022). Additionally, nuclear power exhibits synergy with other clean technologies, providing a stable baseload complementing variable renewables and facilitating hydrogen production for diverse energy applications (Abdelsalam et al., 2024; El-Emam and Subki, 2021; Salam and Khan, 2018; Rekik, 2024; Rekik and El Alimi, 2024e). Finally, ongoing advancements in reactor design, such as SMRs, promise enhanced safety, reduced costs, and greater deployment flexibility, further solidifying the role of nuclear power in decarbonizing the electricity sector (Aunedi et al., 2023). Supportive policies and international cooperation are essential for fully realizing the potential of nuclear energy. Streamlined licensing and regulatory frameworks are crucial for reducing deployment time and costs and ensuring that safety standards are met efficiently (Gungor and Sari, 2022; Jewell et al., 2019). Furthermore, incentivizing investments through financial tools such as tax credits and loan guarantees can attract private capital and create a level-playing field for nuclear power (Decker and Rauhut, 2021; Nian and Hari, 2017; Zimmermann and Keles, 2023). Addressing public perception through education and engagement is equally important for building trust and acceptance. Moreover, international cooperation is vital in several respects. The disposal of radioactive waste remains a complex issue, requiring careful long-term management and securing geological repositories to prevent environmental contamination owing to the long half-life of some isotopes. Furthermore, while modern reactors incorporate advanced safety features, the potential for accidents such as Chernobyl and Fukushima remains a concern because of the potential for widespread radiation release and long-term health consequences (Denning and Mubayi, 2016; Högberg, 2013; Wheatley et al., 2016). Moreover, the high initial costs associated with design, construction, and licensing present significant barriers to new nuclear projects, particularly in developing countries. In addition, the risk of nuclear proliferation, in which technology intended for peaceful energy production is diverted for weapons development, necessitates stringent international safeguards, as highlighted by following reference. Public perception also plays a crucial role because negative opinions and concerns about safety and waste disposal can create opposition to new projects. Finally, the decommissioning of nuclear plants at the end of their operational life is a complex and costly process that requires substantial resources and expertise to dismantle reactors and manage radioactive materials. [...] Conclusion The role of nuclear power in sustainable energy transition is multifaceted and significant. As nations worldwide strive to transition toward more environmentally friendly energy systems, nuclear power has emerged as a crucial component of the decarbonization journey. Its capacity to provide low-carbon electricity, mitigate climate change, and contribute to energy security underscores its importance in the broader context of sustainable energy transitions. Despite this, challenges such as safety, waste management, and public perception must be addressed to fully harness the potential of nuclear power to achieve sustainability goals. By leveraging policy frameworks, technological innovations, and international cooperation, nuclear power can play a vital role in shaping the future of sustainable energy transition on a global scale. In this context, EMDEs exert a substantial influence on global growth, collectively accounting for over 90% of the aggregate, with China positioned to emerge as the foremost nuclear power producer before 2030. Concurrently, advanced economies have witnessed a notable 10% increase in their nuclear power capacity. This augmentation is attributed to the commissioning of new facilities, which offset retirements, manifestly observed in nations such as the United States, France, the United Kingdom, and Canada. Furthermore, there is a marked escalation in annual global investment in nuclear power, surging from US$30 billion throughout the 2010s to surpass US$100 billion by 2030. This upward trajectory is robustly sustained, remaining above US$80 billion by 2050. In conclusion, the remarkable decline in the levelized cost of electricity (LCOE) for solar PV and wind power over the past decade has positioned renewable energy as a cost-competitive and viable alternative to fossil fuels in many regions. The over 80% reduction in LCOE for utility-scale solar PV from 2010 to 2022 exemplifies the economic feasibility of renewables. Concurrently, the steady growth in renewable energy capacity, spearheaded by solar and wind energy, underscores their critical role in the global energy transition. With renewable electricity capacity surpassing 3300 GW in 2023 and accounting for over one-third of the global power mix, renewable energy is undeniably at the forefront of efforts to achieve a sustainable, low-carbon energy future. Declaration of conflicting interestsThe authors declared no potential conflicts of interest with respect to the research, authorship, and/or publication of this article.FundingThe authors received no financial support for the research, authorship, and/or publication of this article.ORCID iDSassi Rekik https://orcid.org/0000-0001-5224-4152Supplemental materialSupplemental material for this article is available online.ReferencesAbbasi K, Jiao Z, Shahbaz M, et al. (2020) Asymmetric impact of renewable and non-renewable energy on economic growth in Pakistan: New evidence from a nonlinear analysis. Energy Exploration & Exploitation 38(5): 1946–1967. Crossref. Web of Science.Abdelsalam E, Almomani F, Azzam A, et al. 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Energy & Economics
Commodity and alternative asset, gold bar and crypto currency Bitcoin on rising price graph as financial crisis or war safe haven, investment asset or wealth concept.

Assessing Bitcoin and Gold as Safe Havens Amid Global Uncertainties: A Rolling Window DCC-GARCH Analysis

by Anoop S Kumar , Meera Mohan , P. S. Niveditha

Abstract We examine the roles of Gold and Bitcoin as a hedge, a safe haven, and a diversifier against the coronavirus disease 2019 (COVID-19) pandemic and the Ukraine War. Using a rolling window estimation of the dynamic conditional correlation (DCC)-based regression, we present a novel approach to examine the time-varying safe haven, hedge, and diversifier properties of Gold and Bitcoin for equities portfolios. This article uses daily returns of Gold, Bitcoin, S&P500, CAC 40, and NSE 50 from January 3, 2018, to October 15, 2022. Our results show that Gold is a better safe haven than the two, while Bitcoin exhibits weak properties as safe haven. Bitcoin can, however, be used as a diversifier and hedge. This study offers policy suggestions to investors to diversify their holdings during uncertain times. Introduction Financial markets and the diversity of financial products have risen in both volume and value, creating financial risk and establishing the demand for a safe haven for investors. The global financial markets have faced several blows in recent years. From the Global Financial Crisis (GFC) to the outbreak of the pandemic and uncertainty regarding economic policy measures of governments and central banks, the financial markets including equity markets around the world were faced with severe meltdowns. This similar behavior was observed in other markets including equity and commodity markets, resulting in overall uncertainty. In this scenario, the investors normally flock toward the safe-haven assets to protect their investment. In normal situations, investors seek to diversify or hedge their assets to protect their portfolios. However, the financial markets are negatively impacted when there are global uncertainties. Diversification and hedging methods fail to safeguard investors’ portfolios during instability because almost all sectors and assets are negatively affected (Hasan et al., 2021). As a result, investors typically look for safe-haven investments to safeguard their portfolios under extreme conditions (Ceylan, 2022). Baur and Lucey (2010) provide the following definitions of hedge, diversifier, and safe haven: Hedge: An asset that, on average, has no correlation or a negative correlation with another asset or portfolio. On average, a strict hedge has a (strictly) negative correlation with another asset or portfolio.Diversifier: An asset that, on average, has a positive correlation (but not perfect correlation) with another asset or portfolio. Safe haven: This is the asset that in times of market stress or volatility becomes uncorrelated or negatively associated with other assets or a portfolio. As was previously indicated, the significant market turbulence caused by a sharp decline in consumer spending, coupled with insufficient hedging opportunities, was a common feature of all markets during these times (Yousaf et al., 2022). Nakamoto (2008) suggested a remedy by introducing Bitcoin, a “digital currency,” as an alternative to traditional fiduciary currencies (Paule-Vianez et al., 2020). Bitcoin often described as “Digital Gold” has shown greater resilience during periods of crises and has highlighted the potential safe haven and hedging property against uncertainties (Mokni, 2021). According to Dyhrberg (2016), the GFC has eased the emergence of Bitcoin thereby strengthening its popularity. Bouri et al. (2017) in their study indicate that Bitcoin has been viewed as a shelter from global uncertainties caused by conventional banking and economic systems. Recent research has found that Bitcoin is a weak safe haven, particularly in periods of market uncertainty like the coronavirus disease 2019 (COVID-19) crisis (Conlon & McGee, 2020; Nagy & Benedek, 2021; Shahzad et al., 2019; Syuhada et al., 2022). In contrast to these findings, a study by Yan et al. (2022) indicates that it can function as a strong safe haven in favorable economic times and with low-risk aversion. Ustaoglu (2022) also supports the strong safe-haven characteristic of Bitcoin against most emerging stock market indices during the COVID-19 period. Umar et al. (2023) assert that Bitcoin and Gold are not reliable safe-havens. Singh et al. (2024) in their study reveal that Bitcoin is an effective hedge for investments in Nifty-50, Sensex, GBP–INR, and JPY–INR, at the same time a good diversifier for Gold. The study suggests that investors can incorporate Bitcoin in their portfolios as a good hedge against market volatility in equities and commodities markets. During the COVID-19 epidemic, Barbu et al. (2022) investigated if Ethereum and Bitcoin could serve as a short-term safe haven or diversifier against stock indices and bonds. The outcomes are consistent with the research conducted by Snene Manzli et al. (2024). Both act as hybrid roles for stock market returns, diversifiers for sustainable stock market indices, and safe havens for bond markets. Notably, Bhuiyan et al. (2023) found that Bitcoin provides relatively better diversification opportunities than Gold during times of crisis. To reduce risks, Bitcoin has demonstrated a strong potential to operate as a buffer against global uncertainty and may be a useful hedging tool in addition to Gold and similar assets (Baur & Lucey, 2010; Bouri et al., 2017; Capie et al., 2005; Dyhrberg, 2015). According to Huang et al. (2021), its independence from monetary policies and minimal association with conventional financial assets allow it to have a safe-haven quality. Bitcoins have a substantial speed advantage over other assets since they are traded at high and constant frequencies with no days when trading is closed (Selmi et al., 2018). Additionally, it has been demonstrated that the average monthly volatility of Bitcoin is higher than that of Gold or a group of international currencies expressed in US dollars; nevertheless, the lowest monthly volatility of Bitcoin is lower than the maximum monthly volatility of Gold and other foreign currencies (Dwyer, 2015). Leverage effects are also evident in Bitcoin returns, which show lower volatilities in high return periods and higher volatilities in low return times (Bouri et al., 2017; Liu et al., 2017). According to recent research, Bitcoins can be used to hedge S&P 500 stocks, which increases the likelihood that institutional and retail investors will build secure portfolios (Okorie, 2020). Bitcoin demonstrates strong hedging capabilities and can complement Gold in minimizing specific market risks (Baur & Lucey, 2010). Its high-frequency and continuous trading further enrich the range of available hedging tools (Dyhrberg, 2016). Moreover, Bitcoin spot and futures markets exhibit similarities to traditional financial markets. In the post-COVID-19 period, Zhang et al. (2021) found that Bitcoin futures outperform Gold futures.Gold, silver, palladium, and platinum were among the most common precious metals utilized as safe-haven investments. Gold is one such asset that is used extensively (Salisu et al., 2021). Their study tested the safe-haven property of Gold against the downside risk of portfolios during the pandemic. Empirical results have also shown that Gold functions as a safe haven for only 15 trading days, meaning that holding Gold for longer than this period would result in losses to investors. This explains why investors buy Gold on days of negative returns and sell it when market prospects turn positive and volatility decreases (Baur & Lucey, 2010). In their study, Kumar et al. (2023) tried to analyse the trends in volume throughout futures contracts and investigate the connection between open interest, volume, and price for bullion and base metal futures in India. Liu et al. (2016) in their study found that there is no negative association between Gold and the US stock market during times of extremely low or high volatility. Because of this, it is not a strong safe haven for the US stock market (Hood & Malik, 2013). Post-COVID-19, studies have provided mixed evidence on the safe-haven properties of Gold (Bouri et al., 2020; Cheema et al., 2022; Ji et al., 2020). According to Kumar and Padakandla (2022), Gold continuously demonstrates safe-haven qualities for all markets, except the NSE, both in the short and long term. During the COVID-19 episode, Gold’s effectiveness as a hedge and safe-haven instrument has been impacted (Akhtaruzzaman et al., 2021). Al-Nassar (2024) conducted a study on the hedge effectiveness of Gold and found that it is a strong hedge in the long run. Bhattacharjee et al. (2023) in their paper examined the symmetrical and asymmetrical linkage between Gold price levels and the Indian stock market returns by employing linear autoregressive distributed lag and nonlinear autoregressive distributed lag models. The results exhibit that the Indian stock market returns and Gold prices are cointegrated. According to the most recent study by Kaczmarek et al. (2022), Gold has no potential as a safe haven, despite some studies on the COVID-19 pandemic showing contradictory results. The co-movements of Bitcoin and the Chinese stock market have also normalized as a result of this epidemic (Belhassine & Karamti, 2021). Widjaja and Havidz (2023) verified that Gold was a safe haven asset during the COVID-19 pandemic, confirming the Gold’s safe-haven characteristic. As previously pointed out, investors value safe-haven investments in times of risk. Investors panic at these times when asset prices fall and move from less liquid (risky) securities to more liquid (safe) ones, such as cash, Gold, and government bonds. An asset must be bought and sold rapidly, at a known price, and for a reasonably modest cost to be considered truly safe (Smales, 2019). Therefore, we need to properly re-examine the safe-haven qualities of Gold and Bitcoin due to the mixed evidences regarding their safe-haven qualities and the impact of COVID-19 and the war in Ukraine on financial markets. This work contributes to and deviates from the body of existing literature in the following ways. We propose a novel approach in this work to evaluate an asset’s time-varying safe haven, hedge, and diversifier characteristics. This research examines the safe haven, hedging, and diversifying qualities of Gold and Bitcoin against the equity indices; S&P 500, CAC 40, and NSE 50. Through the use of rolling window estimation, we extend the methodology of Ratner and Chiu (2013) by estimating the aforementioned properties of the assets. Comparing rolling window estimation to other conventional techniques, the former will provide a more accurate representation of an asset’s time-varying feature. This study explores the conventional asset Gold’s time-varying safe haven, hedging, and diversifying qualities during crises like the COVID-19 pandemic and the conflict in Ukraine. We use Bitcoin, an unconventional safe-haven asset, for comparison. Data and Methodology We use the daily returns of three major equity indices; S&P500, CAC 40, and NSE 50 from January 3, 2018, to October 15, 2022. The equity indices were selected to represent three large and diverse markets namely the United States, France, and India in terms of geography and economic development. We assess safe-haven assets using the daily returns of Gold and Bitcoin over the same time. Equity data was collected from Yahoo Finance, Bitcoin data from coinmarketcap.com, and Gold data from the World Gold Council website. Engle (2002) developed the DCC (Dynamic Conditional Correlation)-GARCH model, which is frequently used to assess contagion amid pandemic uncertainty or crises. Time-varying variations in the conditional correlation of asset pairings can be captured using the DCC-GARCH model. Through employing this model, we can analyse the dynamic behavior of volatility spillovers. Engle’s (2002) DCC-GARCH model contains two phases; 1. Univariate GARCH model estimation2. Estimation of time-varying conditional correlation. For its explanation, mathematical characteristics, and theoretical development, see here [insert the next link in “the word here” https://journals.sagepub.com/doi/10.1177/09711023251322578] Results and Discussion The outcomes of the parameters under the DCC-GARCH model for each of the asset pairs selected for the investigation are shown in Table 1.   First, we look at the dynamical conditional correlation coefficient, ρ.The rho value is negative and insignificant for NSE 50/Gold, NSE 50 /BTC, S&P500/Gold, and S&P500/BTC indicating a negative and insignificant correlation between these asset pairs, showing Gold and Bitcoin as potential hedges and safe havens. The fact that ρ is negative and significant for CAC 40/Gold suggests that Gold can be a safe haven against CAC 40 swings. The asset pair CAC/BTC, on the other hand, has possible diversifier behavior with ρ being positive but statistically insignificant. Next, we examine the behavior of the DCC-GARCH parameters; α and β. We find that αDCC is statistically insignificant for all the asset pairs, while βDCC is statistically significant for all asset pairs. βDCC quantifies the persistence feature of the correlation and the extent of the impact of volatility spillover in a particular market’s volatility dynamics. A higher βDCC value implies that a major part of the volatility dynamics can be explained by the respective market’s own past volatility. For instance, the NSE 50/Gold’s βDCC value of 0.971 shows that there is a high degree of volatility spillover between these two assets, with about 97% of market volatility being explained by the assets’ own historical values and the remainder coming from spillover. Thus, we see that the volatility spillover is highly persistent (~0.8) for all the asset pairs except NSE 50/BTC. The results above show that the nature of the dynamic correlation between the stock markets, Bitcoin and Gold is largely negative, pointing toward the possibility of Gold and Bitcoin being hedge/safe haven. However, a detailed analysis is needed to confirm the same by employing rolling window analysis, and we present the results in the forthcoming section. We present the rolling window results for S&P500 first. We present the regression results for Gold in Figure 1 and Bitcoin in Figure 2   Figure 1. Rolling Window Regression Results for S&P500 and Gold.Note: Areas shaded under factor 1 represent significant regression coefficients. In Figure 1, we examine the behavior of β0 (intercept term), β1, β2, and β3 (partial correlation coefficients). The intercept term β0 will give an idea about whether the asset is behaving as a diversifier or hedge. Here, the intercept term shows significance most of the time. However, during 2018, the intercept was negative and significant, showing that it could serve as a hedge during geopolitical tensions and volatilities in the global stock market. However, during the early stages of COVID-19, we show that the intercept is negative and showing statistical significance, suggesting that Gold could serve as a hedge during the initial shocks of the pandemic. These findings are contrary to the results in the study by Tarchella et al. (2024) where they found hold as a good diversifier. Later, we find the intercept to be positive and significant, indicating that Gold could act as a potential diversifier. But during the Russia-Ukraine War, Gold exhibited hedge ability again. Looking into the behavior of β1, which is the partial correlation coefficient for the tenth percentile of return distribution shows negative and insignificant during 2018. Later, it was again negative and significant during the initial phases of COVID-19, and then negative in the aftermath, indicating that Gold could act as a weak safe haven during the COVID-19 pandemic. Gold could serve as a strong safe haven for the SP500 against volatility in the markets brought on by the war in Ukraine, as we see the coefficient to be negative and large during this time. From β2 and β3, the partial correlation coefficients of the fifth and first percentile, respectively, show that Gold possesses weak safe haven properties during COVID-19 and strong safe haven behavior during the Ukraine crisis. Next, we examine the characteristics of Bitcoin as a hedge/diversifier/safe haven against the S&P500 returns. We present the results in Figure 2.   Figure 2. Rolling Window Regression Results for S&P500 and Bitcoin.Note: Areas shaded under factor 1 represent significant regression coefficients. Like in the previous case, we begin by analysing the behavior of the intercept coefficient, which is β0. As mentioned earlier the intercept term will give a clear picture of the asset’s hedging and diversifier property. In the period 2018–2019, the intercept term is positive but insignificant. This could be due to the large volatility in Bitcoin price movements during the period. It continues to be minimal (but positive) and insignificant during 2019–2020, indicating toward weak diversification possibility. Post-COVID-19 period, the coefficient shows the significance and positive value, displaying the diversification potential. We see that the coefficient remains positive throughout the analysis, confirming Bitcoin’s potential as a diversifier. Looking into the behavior of β1 (the partial correlation coefficient at tenth percentile), it is positive but insignificant during 2018. The coefficient is having negative sign and showing statistical significance in 2019, suggesting that Bitcoin could be a good safe haven in that year. This year was characterized by a long list of corporate scandals, uncertainties around Brexit, and tensions in global trade. We can observe that throughout the COVID-19 period, the coefficient is showing negative sign and negligible during the March 2020 market meltdown, suggesting inadequate safe-haven qualities. However, Bitcoin will regain its safe-haven property in the coming periods, as the coefficient is negative and significant in the coming months. The coefficient is negative and shows statistical significance during the Ukrainian crisis, suggesting strong safe-haven property. Only during the Ukrainian crisis could Bitcoin serve as a safe haven, according to the behavior of β2, which displays the partial correlation coefficient at the fifth percentile. Bitcoin was a weak safe haven during COVID-19 and the Ukrainian crisis, according to β3, the partial correlation coefficient for the first percentile (coefficient negative and insignificant). According to the overall findings, Gold is a stronger safe haven against the S&P 500’s swings. This result is consistent with the previous studies of Triki and Maatoug (2021), Shakil et al. (2018), Będowska-Sójka and Kliber (2021), Drake (2022), and Ghazali et al. (2020), etc. The same analysis was conducted for the CAC 40 and the NSE 50; the full analysis can be found here [insert the next link in “the word here” https://journals.sagepub.com/doi/10.1177/09711023251322578]. However, it is important to highlight the respective results: In general, we may say that Gold has weak safe-haven properties considering CAC40. We can conclude that Bitcoin’s safe-haven qualities for CAC40 are weak. We can say that Gold showed weak safe-haven characteristics during the Ukraine crisis and good safe-haven characteristics for the NSE50 during COVID-19. We may say that Bitcoin exhibits weak safe haven, but strong hedging abilities to NSE50. Concluding Remarks In this study, we suggested a new method to evaluate an asset’s time-varying hedge, diversifier, and safe-haven characteristics. We propose a rolling window estimation of the DCC-based regression of Ratner and Chiu (2013). Based on this, we estimate the conventional asset’s time-varying safe haven, hedging, and diversifying properties during crises like the COVID-19 pandemic and the conflict in Ukraine. For comparison purposes, we include Bitcoin, a nonconventional safe-haven asset. We evaluate Gold and Bitcoin’s safe haven, hedging, and diversifier properties to the S&P 500, CAC 40, and NSE 50 variations. We use a rolling window of length 60 to estimate the regression. From the results, we find that Gold can be considered as a better safe haven against the fluctuations of the S&P 500. In the case of CAC 40, Gold and Bitcoin have weak safe-haven properties. While Bitcoin demonstrated strong safe-haven characteristics during the Ukraine crisis, Gold exhibited strong safe-haven characteristics during COVID-19 for the NSE 50. Overall, the findings indicate that Gold is the better safe haven. This outcome is consistent with earlier research (Będowska-Sójka & Kliber, 2021; Drake, 2022; Ghazali et al., 2020; Shakil et al., 2018; Triki & Maatoug, 2021). When it comes to Bitcoin, its safe-haven feature is weak. Bitcoin, however, works well as a diversifier and hedge. Therefore, from a policy perspective, investing in safe-haven instruments is crucial to lower the risks associated with asset ownership. Policymakers aiming to enhance the stability of financial portfolios might encourage institutional investors and other market players to incorporate Gold into their asset allocations. Gold’s strong safe-haven qualities, proven across various market conditions, make it a reliable choice. Gold’s performance during crises like COVID-19 highlights its potential to mitigate systemic risks effectively. Further, Bitcoin could also play a complementary role as a hedge and diversifier, especially during periods of significant volatility such as the Ukraine crisis. While Bitcoin’s safe-haven characteristics are relatively weaker, its inclusion in a diversified portfolio offers notable value and hence it should not be overlooked. Further, policymakers may consider how crucial it is to monitor dynamic correlations and periodically rebalance portfolios to account for shifts in the safe haven and hedging characteristics of certain assets. Such measures could help reduce the risks of over-reliance on a single asset type and create more resilient portfolios that can better withstand global economic shocks. For future research, studies can be conducted on the estimation of the rolling window with different widths. This is important to understand how the safe-haven property changes across different holding periods. Further, more equity markets would be included to account for the differences in market capitalization and index constituents. This study can be extended by testing these properties for multi-asset portfolios as well. We intend to take up this study in these directions in the future. Data Availability StatementNot applicable.Declaration of Conflicting InterestsThe authors declared no potential conflicts of interest with respect to the research, authorship, and/or publication of this article.FundingThe authors received no financial support for the research, authorship, and/or publication of this article.ReferencesAkhtaruzzaman M., Boubaker S., Lucey B. M., & Sensoy A. (2021). Is gold a hedge or a safe-haven asset in the COVID-19 crisis? Economic Modelling, 102, 105588. Crossref. Web of Science.Al-Nassar N. S. (2024). Can gold hedge against inflation in the UAE? A nonlinear ARDL analysis in the presence of structural breaks. PSU Research Review, 8(1), 151–166. Crossref.Barbu T. C., Boitan I. A., & Cepoi C. O. (2022). Are cryptocurrencies safe havens during the COVID-19 pandemic? A threshold regression perspective with pandemic-related benchmarks. Economics and Business Review, 8(2), 29–49. 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When, where, and how economic policy uncertainty predicts Bitcoin returns and volatility? A quantiles-based analysis. The Quarterly Review of Economics and Finance, 80, 65–73. Crossref.Nagy B. Z., & Benedek B. (2021). Higher co-moments and adjusted Sharpe ratios for cryptocurrencies. Finance Research Letters, 39, 101543. Crossref. Web of Science.Nakamoto S. (2008). Bitcoin: A peer-to-peer electronic cash system. Bitcoin. https://bitcoin.org/bitcoin.pdfOkorie D. I. (2020). Could stock hedge Bitcoin risk(s) and vice versa? Digital Finance, 2(1), 117–136. Crossref.Paule-Vianez J., Prado-Román C., & Gómez-Martínez R. (2020). Economic policy uncertainty and Bitcoin. Is Bitcoin a safe-haven asset? European Journal of Management and Business Economics, 29(3), 347–363. Crossref.Ratner M., & Chiu C. C. J. (2013). Hedging stock sector risk with credit default swaps. International Review of Financial Analysis, 30, 18–25. Crossref. Web of Science.Salisu A. A., Raheem I. D., & Vo X. V. (2021). 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Diplomacy
Russia-Latin America parliament conference (2023-09-29)

Latin America’s Attitudes towards Russia’s War in Ukraine

by Maria Puerta Riera

In Latin America, Cuba, Nicaragua, and Venezuela are not alone in their support for Russia and its invasion of Ukraine. In many cases, support has been disguised as an interest in peace or a neutral stance towards the conflict, as seen in the cases of Colombia, Mexico, and Brazil. While we find manifold diplomatic approaches toward Russia and Ukraine in Latin America, the underlying motivations can be understood in terms of support or rejection. While a majority of nations reject the invasion, considering it a threat to territorial sovereignty and self-determination, others have been reluctant to place any blame on Russia. More broadly, there has been less of an ideological bloc and more of an anti-imperialist or anti-colonial sentiment, with a few exceptions, such as Gabrie Boric from Chile who has publicly repudiated Russia’s aggression against Ukraine. His opposition is a departure from other Latin American leftist leaders like Luiz Inácio Lula da Silva and Gustavo Francisco Petro who have been more critical of Volodymyr Zelensky than Vladimir Putin. However, we can still identify three distinctive approaches to the crisis: 1) geopolitical, 2) economic, and 3) historical. The region has a keen interest in keeping its doors open to Russia. BRICS members like Brazil have managed to maintain their alleged neutrality in the pursuit of peace—even as President Lula has explicitly supported  Putin—while simultaneously protecting their economic interests. Others like Colombia and Mexico have shielded their unwillingness to condemn Putin’s invasion of Ukraine in an apparent push for peace. On the economic front, attitudes towards Russia are more tenuous given that Russia’s capability for foreign direct investment has been significantly reduced by the brunt of the war, along with the impact of the economic sanctions that followed their aggression. To be sure, Russia’s investments in the region have been winding down for some time, with a decreasing profile in areas such as energy, oil, and gas, as well as software and IT. However, the economic ties are more significant in the cases of Cuba, Nicaragua, and Venezuela—where they are joined more by their subjection to economic sanctions, and therefore the necessity to evade the consequences of economic isolation. There are specific areas key to this alliance: Russian fertilisers, along with oil and diesel, are critical to bypassing Western sanctions. Meanwhile, historical ties are more consequential than is commonly understood. Misinterpretations of Russia’s Soviet past by leftist-governed Latin American countries and longstanding social and cultural commonalities partially explain the continued support from diverse leaders such as Lula and Jair Bolsonaro in Brazil. These ties, rooted in shared anti-colonial sentiments and cultivated over decades, and regardless of ideological shifts, illustrate Russia’s multifaceted regional influence. This context underscores the fact that Russia’s regional impact transcends ideological lines, with both left and right-wing governments either explicitly supporting Russia or criticising Ukraine’s NATO aspirations to justify Russia’s aggression. The return of Donald Trump to the White House has prominent leaders of the Latin American left aligning with the new administration, resulting in significant consequences for the region. The new US administration’s criticism of Kyiv resonates with positions held by Brazil, Mexico, Colombia, Cuba, and Nicaragua. Despite ideological differences, their alignment emerges from a mix of political affinities, geopolitical strategies, and historical connections. Putin’s explicit defiance of Donald Trump’s negotiation efforts raises questions about Latin America’s influence over the conflict, largely due to its initial reluctance to adopt a decisive stance against Putin. The lonely voice condemning Putin’s war of attrition continues to be Chilean President Gabriel Boric, in stark contrast to Lula DaSilva and Gustavo Petro, who remain in Putin’s corner, making it unlikely they can be viewed as honest brokers in a peace initiative. Trump’s policies have prompted Brazil and Colombia to voice limited concerns about US plans for Ukraine, although still refraining from outright condemnation of Russia. This stance appears less a genuine support for Ukraine and more an opposition to US involvement in peace processes, even blaming Ukraine as partially responsible. Meanwhile, ideology alone has proven insufficient to prompt unified condemnation of Russia or widespread support for Ukraine in Latin America. Previous efforts by the Biden administration to secure regional military assistance for Ukraine were met with firm rejection and reluctance. This distancing, interpreted as tacit support for Russia, contributes to concerns about increasing authoritarian tendencies in the region, reflecting a diminished commitment to emerging democracies in crisis. Effectively abandoned by the international community, Ukraine faces negotiations with nations seeking its valuable earth minerals in exchange for protection, essentially framing it within a debt relief context. The absence of significant Latin American critique of this neocolonial approach underscores a troubling shift where sovereignty and self-determination appear increasingly disposable, contingent upon geopolitical interests and contexts. Maria I. Puerta Riera is a Visiting Professor of Political Science at Valencia College in Orlando, FL., where she teaches U.S. Government and International Politics. She holds a PhD. in Social Sciences, with her research focusing on the crises of democracies in Latin America. She has a special interest in Venezuela, Cuba, and Nicaragua, and is currently working on the effects of the illiberal regimes of China and Russia and their use of sharp power in the region. This article is published under a Creative Commons License and may be republished with attribution.

Diplomacy
Classification of the countries according to the world-system analysis of I. Wallerstein: core, semi-periphery and periphery.

Reflections on the modern world-system from a decolonial perspective

by Larissa Salas Duarte

Abstract This paper analyzes, from Immanuel Wallerstein's Analysis of the World – System, an introduction, the emergence of the modern world – system, the permanence of the colonial logic in the modern capitalist world-system from a decolonial approach. It examines how the center – periphery structure has determined the economic, political and epistemic dynamics at the global level. Through this approach we study how coloniality has influenced the construction of knowledge. It also analyzes the impact of this structure on the recognition of States and the negotiation of international treaties, showing how Western power has conditioned the legitimacy and autonomy of peripheral nations. It also addresses the persistence of the center-periphery logic in local relations, as well as in gender and racial inequality, highlighting the role of anti-systemic movements in the struggle against these structures. It concludes that, although colonial dynamics continue to operate through debt, extractivism and the imposition of political models, decolonial perspectives offer tools to make visible and resist them. Introduction This paper will analyze the dynamics of the current international system based on the work “World-Systems Analysis: An Introduction – The Rise of the Modern World-System” by Immanuel Wallerstein. In it, Wallerstein (2005) argues that the modern capitalist world-system has structured the global order since the 16th century, consolidating a hierarchical division between the center and the periphery. This division has not only shaped economic and political dynamics but has also established patterns of domination and dependency that persist to this day. The colonial expansion of European powers not only guaranteed access to resources and markets but also legitimized a system of exploitation based on racism and the hierarchization of colonized peoples. The decolonial perspective of Walter Mignolo (2013) will be adopted, which posits that this is a political and epistemic project aimed at dismantling the colonial matrix of power that sustains Western modernity. From this framework, the article will analyze how colonial logic continues to operate in the capitalist world-system through the economic and political subordination of the peripheries. It will also examine the impact of the colonial worldview on knowledge production during the 18th and 19th centuries, as well as the reproduction of the center–periphery dynamic in the recognition of states during the 20th century and in the negotiation of international treaties during the 21st century. Likewise, it will address how this dynamic manifests not only internationally but also within local structures, perpetuating inequalities expressed in labor, gender, and racial relations today. This work seeks to provide a critical perspective on the persistence of colonial logic in the modern capitalist world-system, emphasizing the need to rethink power structures from a decolonial perspective that makes visible and vindicates the subaltern voices that have been historically silenced. Development Colonial Logic in the Capitalist World-System In his work “World-Systems Analysis: An Introduction – The Rise of the Modern World-System”, Wallerstein seeks to understand the structure and dynamics of the world-system, taking the 16th century as the starting point —a period when the conquests of the territories we now know as the Americas took place. The colonial period clearly illustrates the core–periphery dynamic (Wallerstein, 2005), as the Spanish, British, and Portuguese empires engaged in the extraction of resources from their colonies, while colonized peoples endured oppression and racism to which they would be condemned for centuries. This oppression brought significant benefits to the modern world-system, as it enabled massive capital accumulation — but exclusively in the core. This was because the colonial process built peripheral economies around the needs of the core, forcing them into subordination to the interests of the global market, generating dependency and underdevelopment. Quijano and Wallerstein (1992) argue that “[…] ethnicity was the inevitable cultural consequence of coloniality. It delineated the social boundaries corresponding to the division of labor” (p. 585). Due to the colonial period, the modern capitalist world-system laid its foundations and strengthened its market-based economic model through racism and hierarchization — circumstances that have legitimized the exploitation and domination of non-European peoples throughout history. Control over the resources of peripheral states by core states has endured to this day, along with the imposition of Western production and consumption models that perpetuate inequality. The colonial period’s greatest legacy remains systemic violence and subalternity. On this basis, it is important to analyze this work from a decolonial perspective. For Walter Mignolo (2013), “decoloniality is not a concept, but a practice and a political, epistemic, and ethical project aimed at disengaging from the colonial matrix of power that sustains Western modernity” (p. 21). This perspective also draws on the notion of epistemic subalternity, which refers to the experiences and knowledge of colonized and subaltern peoples that are rendered invisible, devalued, or reduced to particular cases — without being considered an integral part of the world-system (Mora, 2008). Coloniality in the Construction of Knowledge At the end of the 18th century, the modern university emerged, dividing its studies into two faculties: sciences and humanities. In the 19th century, another division took place within the humanities, opening the space for the study of social sciences, which would later also be split — on one side, those leaning toward scientism, and on the other, toward the humanistic approach. This led to the creation of new disciplines: economics, political science, and sociology (Wallerstein, 2005). These new sciences built their worldview and knowledge construction from a Eurocentric and colonialist perspective, thus assigning labels to peoples different from their own. These new sciences categorized the study of the world’s peoples into three groups. First, civilized peoples — Western nations, considered as such because they believed their social and political organization systems were the most advanced. Second, the high civilizations — India, China, Persia, and the Arab world — classified in this way because they possessed writing, religion, language, and customs. They were regarded as civilized peoples but not modern, under the previously mentioned concept. This category gave rise to orientalist scholars, with a Eurocentric and exoticizing view. Finally, the so-called primitive peoples — those who, from the colonial perspective, lacked writing, religion, language, and customs. This perception of the “uncivilized other” was used to justify colonial processes in the periphery, which even today enable the reproduction of exploitative and racist practices. Segregation in the construction of knowledge, imbued with colonial and Eurocentric thought, is based on criticizing the behavior of these peoples and on what should be changed about them (Zapata, 2008). The Eurocentric conception asserts categorically that the modus vivendi of these peoples is not appropriate according to Western standards. Although this way of thinking has evolved over time, its essence remains the same and has led Western countries to grant themselves the power to change the way of life of these peoples through invasions, neocolonial processes, and violent interventions via military force or economic interference. The Center and the Periphery in the Recognition of States As previously mentioned, Europe established a correspondence between modernity and the West; this includes the institution of the nation-state as its derived product (Zapata, 2008). From the Eurocentric perspective, for civilizations to be considered nation-states, they must possess four characteristics: territory, population, government, and sovereignty. In Public International Law, sovereign states are the main subjects of international relations, and for a state to be recognized as such, it must be acknowledged by the majority of states that are part of the international system. The center–periphery concept operates both economically and politically, which can be observed when a new state seeks recognition from members of the international system. The recognition granted by a state from the center carries more weight than that from the periphery, since states in the center, with greater political and economic capacity, influence the decisions of their allies — both within the center and the periphery. This need for state recognition has been extremely beneficial for the modern capitalist world-system, as political and economic interdependence, along with the perpetuation of power in the countries of the center — particularly those belonging to the West — ensures that they act, whether in matters of state recognition, political agendas, or economic issues, entirely to their own advantage, disregarding the interests of “the other.” From a decolonial perspective, state recognition is a Western construct designed to maintain control over who meets the imposed criteria to belong to the Eurocentric international system. These criteria clearly do not align with the social organization of all non-Western civilizations but were conceived in such a way as to subordinate them to the needs of the world-system, which inevitably serves the interests of Western core states. This can be exemplified by the case of Taiwan. In 1971, the Kuomintang lost recognition from the government of mainland China, and starting in 1985, Taiwan’s government sought to strengthen diplomatic relations with states that already recognized it and to develop relations with those that did not, with the aim of obtaining their approval (Connelly, 2014). Despite the passage of time, recognition of Taiwan as a state by core countries seems inconvenient for them, likely due to the ongoing political dispute between Taiwan and China. As a result, only 14 peripheral states recognize it as such. Despite this, the Northeast Asian country maintains unofficial relations with 47 states and the European Union, for purely economic reasons. The Modern Capitalist World-System in International Treaties It is worth mentioning that the idea of the center–periphery permeates the negotiation of international agreements. As mentioned earlier, the so-called “primitive peoples” were civilizations that, from the Eurocentric perspective of knowledge, lacked writing, religion, languages, or customs. This idea persisted into the 20th century, as reflected in the Statute of the International Court of Justice, which in Chapter II, Article 38, states that “the Court, whose function is to decide in accordance with international law such disputes as are submitted to it, shall apply: […] the general principles of law recognized by civilized nations” (UN, 1945). The Eurocentric conception of a civilized nation in the postwar period was based on the type of government existing in each state. Thus, countries without a democratic political system were not considered civilized nations. This conception forced nations not to determine their own system of government, but rather to adhere to the one imposed by the Western international system in order to be accepted, disregarding their customs and traditions. A more current example of the imposition of Eurocentric ideas on systems of government is the signing of the Free Trade Agreement between the European Union and Mexico in 2000. Ratification of the trade agreement was conditioned on what they called the “democratic clause.” The agreement was not ratified by the Italian government until July 3 of that year, when the presidential elections resulted in the victory of Vicente Fox (Villegas, 2001). On the same day, the European Commission’s spokesperson, Gunnar Wiegand, said in his press release: “A historic vote has taken place in Mexico. The Commission congratulates the Mexican people for exercising their democratic rights in such a mature and exemplary manner” (Caracol Radio, 2000). The spokesperson’s mention of the Mexican people’s maturity refers to the notion that, in the past, the exercise of democracy had not possessed this quality — an observation made from a paternalistic and Eurocentric perspective. Had the election results been different, Mexico could have faced the possibility of the European Union “imposing sanctions as a reaction to the verification of interruptions in democratic processes, which, in addition to affecting development, constitute a threat to international peace and security” (Cordero Galdós, 2002, p. 128). The criticism of the imposition of the “democratic clause” centers on the recurring practice of requiring peripheral states to adapt to the political ideologies and economic needs of the core. The Reproduction of the Center–Periphery Dynamic at the Local Level As mentioned in the development of this work, the effects of colonialism persist across all systems and subsystems through the coloniality of power, knowledge, and being, the latter of which will be addressed later. This is manifested in global inequalities, the exploitation of natural resources in peripheral countries, and the persistence of racist and Eurocentric power structures. From Wallerstein’s perspective, the world-system is a historical structure which, although in constant transformation, reproduces power relations and inequalities over time through the domination of the core and the exploitation of the peripheries (Wallerstein, 2005). Thus, the world-system has evolved in several ways; one of these is the introduction of the term semi-periphery into the analysis. During the colonial period, there were only core and peripheral nations. Over the centuries, however, semi-peripheral states have emerged — nations that not only extract raw materials or engage in manufacturing but also have the capacity to produce cutting-edge technology (Wallerstein, 2005). This positions them in a more privileged place than peripheral countries in the international system. Yet, despite appearing to have overcome the systemic oppression that once kept them in the periphery, the colonial mindset within their institutions perpetuates their subordination to the core. Good examples of semi-peripheral states in Latin America are Mexico and Brazil. Both countries were victims of the exploitation and systemic violence of colonialism. This shaped the development of their societies and economies for centuries. Even after achieving independence and building productive and economic systems that placed them in the semi-periphery, their economic progress was built on a legacy of oppression and racism that continues to reproduce the abuses described. In this way, the concept of core and periphery permeates social and family subsystems. This can be observed in labor relations, where capitalists depend on the core–periphery or superior–subordinate relationship to sustain the production model. It is also evident in social relations, which Wallerstein refers to as anti-systemic movements. Society perpetuates the core–periphery principle by placing women and racialized communities in the periphery, while men — especially white men with power — occupy the core. Anti-systemic movements paved the way for the struggle against these inequalities, giving rise, for example, to feminist and Indigenous movements. These have led to the development of theoretical perspectives such as decolonial feminism, which adds analytical variables to the decolonial perspective. According to Yuderkys Espinosa, it emerges from “[…] a subaltern, non-hegemonic voice […] anti-colonial, anti-imperialist, anti-capitalist. […] Its aim is to question and oppose an imperial and racist rationale” (Barroso, 2014, p. 2). Conclusions The modern capitalist world-system has managed to sustain and expand itself thanks to colonial structures that, far from disappearing with decolonization processes, have mutated and perpetuated dynamics of domination and dependence. As discussed, the core–periphery logic has been key to the organization of the international system, not only in economic terms but also in the construction of knowledge, the legitimization of states, the negotiation of international agreements, and the imposition of political and social models from Western hegemony. The colonial legacy remains in the structural subordination of peripheral economies to the interests of the core, the imposition of international norms that favor core countries, and the persistence of racialized and gender-based inequalities within peripheral states themselves. This scheme has not only ensured capital accumulation in the core but has also limited the self-determination of historically colonized peoples, while normalizing their exclusion from political, economic, and epistemic spheres. At the international level, neocolonialism operates through mechanisms such as external debt, unequal trade agreements, and political interference in the internal affairs of peripheral states. In addition, extractivism and territorial dispossession continue to reproduce colonial logics, affecting both peripheral countries and Indigenous communities as well as other historically marginalized groups. In this sense, the modern capitalist world-system not only perpetuates economic exploitation but also reinforces power structures based on racism, sexism, and subalternity. However, as decolonial perspectives point out, the coloniality of power is not an immutable phenomenon. This approach questions the structures of power and knowledge inherited from colonization, seeking to deconstruct Eurocentric discourses and make visible the voices and experiences of the subaltern. Anti-systemic movements have sought to challenge these structures, reclaiming the agency of subaltern peoples and promoting the construction of alternatives that confront the colonial matrix of power. Particularly, decolonial feminism has emerged as a key critique of the intersection between patriarchy and coloniality, showing how women — especially racialized women — have been relegated to the periphery of the system. Thus, analyzing the world-system from a decolonial perspective allows us not only to understand the continuity of structures of domination but also to recognize the spaces of resistance and contestation that emerge within it. In conclusion, the decolonial perspective enables us to rethink the modern world-system from a critical standpoint, recognizing structural inequalities and the need to transform the power dynamics that perpetuate the domination of the core over the periphery. Decolonialism makes it possible to redefine notions of progress, development, and modernity from a perspective free from colonial stereotypes and hierarchies, recognizing the diversity of knowledge and worldviews of Indigenous peoples. It seeks to decentralize power by rethinking and decolonizing power relations between the core and the periphery, between the state and local communities, aiming for a more equitable distribution of resources and benefits. It is essential to make visible and vindicate the subaltern voices that have been historically silenced, promoting an epistemic and political shift that dismantles the foundations of this system and paves the way for fairer and more inclusive models. References Andrade, V. M. (diciembre, 2019). La Teoría Crítica y el pensamiento decolonial: hacia un proyecto emancipatorio post–occidental. Revista Mexicana de Ciencias Políticas y Sociales, 65(238). https://doi.org/10.22201/fcpys.2448492xe.2020.238.67363Barroso, M. (2014). Feminismo decolonial: crítica y propuesta. Revista Estudos Feministas, 22(1), 1–15.Caracol Radio. (3 de julio, 2000). Europa felicita a mexicano por votación ejemplar. Caracol Radio. https://caracol.com.co/radio/2000/07/03/nacional/0962604000_023535.htmlConnelly, M. (2014). Historia de Taiwán. El Colegio de México.Corderos Galdós, H. (agosto, 2002). La denominada cláusula democrática como modalidad de condicionamiento en los Programas de Ayuda al Desarrollo de la Unión Europea. Agenda Internacional, (16), 123–136. https://doi.org/10.18800/agenda.200201.007Donoso Miranda, P. V. (diciembre, 2014). Pensamiento decolonial en Walter Mignolo: América Latina: ¿transformación de la geopolítica del conocimiento? Temas de Nuestra América, 30(56), 45–56.Mignolo, W. D. (2013). Geopolítica de la sensibilidad y del conocimiento: Sobre (de)colonialidad, pensamiento fronterizo y desobediencia epistémica. Revista de Filosofía, 80(1), 7–23.Mora, M. (2008). Decolonizing politics: Zapatista indigenous autonomy in an era of neoliberal governance and low intensity warfare [Tesis doctoral, The University of Texas at Austin]. https://repositories.lib.utexas.edu/server/api/core/bitstreams/68ba681a-a78b-4ddd-9441-32a92b0edf5c/contentOrganización de las Naciones Unidas (1945). Estatuto de la Corte Internacional de Justicia. Carta de las Naciones Unidas.Portal Académico CCH (2017). Historia de México 1, Unidad 4, Intervenciones extranjeras: Inglaterra. Portal Académico CCH. https://e1.portalacademico.cch.unam.mx/alumno/historiademexico1/unidad4/intervencionesextranjeras/inglaterra#:~:text=Razones%20suficientes%20para%20reconocer%20a,poner%20freno%20al%20expansionismo%20estadounidense.Quijano, A., & Wallerstein, I. (1992). La americanidad como concepto, o América en el moderno sistema mundial. Revista Internacional de Ciencias Sociales, XLIV(4), 583–592.Rojas, V. M. (2010). Capítulo séptimo. El reconocimiento internacional. En Rojas, V. M. Derecho internacional público (pp. 61–65). Nostras Ediciones. https://archivos.juridicas.unam.mx/www/bjv/libros/7/3262/3.pdfRomero Losacco, J. (diciembre, 2020). El sistema-mundo más allá de 1492: modernidad, cristiandad y colonialidad: aproximación al giro historiográfico decolonial. Tabula Rasa, (36), 355–376. https://doi.org/10.25058/20112742.n36.14Ruiz, S. M. (mayo, 2019). La colonialidad y el sistema-mundo moderno colonial. Un diálogo entre Quijano y Wallerstein. Espirales, 3(1), 189–197.Villegas, F. G. (2001). México y la Unión Europea en el Sexenio de Zedillo. Foro Internacional, 41(166), 819–839.Wallerstein, I. (2005). Análisis de sistemas-mundo: una introducción. Siglo XXI.Zapata Silva, C. (2008). Edward Said y la otredad cultural. Atenea, (498), 55–73. http://dx.doi.org/10.4067/S0718-04622008000200005

Energy & Economics
Los Angeles, CA USA - May 23 2025 : Donald Trump on Climate Change, Drill Baby Drill

The temporal logic of Trump II’s climate denialism

by Heikki Patomäki

In a landmark advisory opinion, the International Court of Justice (ICJ) ruled on 23 July 2025 that all UN member states have legal obligations under international law to address climate change, which the court described as an existential threat to life on Earth. Powerful countries too must be held responsible for their current emissions and past inaction. Possibly in anticipation of such a ruling, Chris Wright, the US Secretary of Energy and former chief executive of Liberty Energy (an oilfield services company), published an article in The Economist a week earlier, arguing that “climate change is a by-product of progress, not an existential crisis”. Whereas the ICJ relied primarily on the IPCC reports, “which participants agree constitute the best available science on the causes, nature and consequences of climate change”, Wright’s view is based on a particular temporal logic.  According to the IPCC reports, most greenhouse gases come from burning fossil fuels, with additional emissions from agriculture, deforestation, industry, and waste. They drive global warming, which is projected to reach 1.5°C between 2021 and 2040, with 2°C likely to follow. Even 1.5°C is not considered safe for most nations, communities, and ecosystems, and according to IPCC, only deep, rapid, and sustained emission cuts can slow warming and reduce the escalating risks and damages. The 2024 state of the climate report, published in BioScience, presents even more worrying assessments. Among other things, the report cites surveys indicating that nearly 80% of these scientists anticipate global temperatures increasing by at least 2.5°C above preindustrial levels by the end of the century, and nearly half of them foresee a rise of at least 3°C.  Wright’s article suggests that the issue of amplifying doubt about climate change may have little to do with engagement with science but rather reflects a deeper temporal logic. This logic is rooted in a Whiggish account of progress to date, a resistance to the reality of the future and the desire for nostalgic restoration. I will explain these elements one by one. The first tier: Whiggism Wright disagrees with most scientific anticipations. His views are likely representative not only of the Trump II administration but also of conservative right-wing populism more generally. It is difficult to understand their climate denialism without an analysis of their views on time and temporality. The most important question concerns the reality of the future. At the first level, Wright provides a kind of textbook example of Whig history, portraying progress as linear, inevitable, and driven by liberal values. Herbert Butterfield introduced the idea of Whig history in his influential 1931 book The Whig Interpretation of History as a critique of a specific way of writing history that he regarded as flawed and intellectually dishonest. Focusing on inevitable progress distorts historical analysis by promoting simplified cause-and-effect reasoning and selective storytelling, emphasising present-day evaluation (and glorification) over understanding the real causes of historical change. In a Whiggish manner, Wright claims that the last 200 years have seen two big changes to the human condition: “human liberty” and affordable energy. As a result of these two things, life expectancy has nearly doubled, and the percentage of people living in extreme poverty has dropped from 90% to 10%. However, Wright’s argumentation is based on non-contextual and, in that sense, timeless representations of the world, despite its “progressivism”.  For example, consider the claim that extreme poverty has dropped from 90% to 10%. It is based on using a fixed dollar threshold, such as USD 2 per day, to measure poverty over 200 years. This is misleading because most people in the 19th century lived in largely non-monetised economies where subsistence needs were met outside of market exchange, and monetary income was minimal or irrelevant. These metrics also obscure shifting and context-bound definitions of basic needs; rely on incomplete historical data; and ignore the role of colonial dispossession and structural inequality in shaping global poverty. While it is true that life expectancy has doubled, largely due to improvements in hygiene and healthcare, the idea that extreme poverty has plummeted from 90% to under 10% also ignores the fact that the global population has grown eightfold, affecting the entire Earth system with devastating ecological and geological consequences. It further ignores that the rise in life expectancy and poverty reduction has come not only from liberalism or economic growth more generally but from ethical and political struggles and public health interventions. Often, these struggles have been fought in the name of socialism and won despite capitalist incentives, market mechanisms, and related political forces. The second tier: blockism At a deeper level, Wright’s views seem to presuppose what Roy Bhaskar calls “blockism”: the postulation of a simultaneous conjunctive totality of all events. This may sound abstract, but it has been a common assumption among many 20th-century physicists and philosophers that the universe forms a static, closed totality. This view stems from an atomist ontology, where individuals are seen as abstract, events follow regular patterns, time is viewed as spatial, and laws that can be expressed mathematically are considered reversible.  In such a conception, time appears as just another “spatial” dimension. According to the block universe model, the past, present, and future all exist equally and tenselessly. The universe is imagined as a four-dimensional geometric object, like a “block” of spacetime. Time is not something that “flows” or “passes”; instead, all moments are spatially extended points in a timeless whole. Blockism suggests that change and becoming are not truly real but are simply parts of our subjective experience.  The real challenge is to reconcile Whiggism and blockism. Wright is not a theorist and might not need to worry about the coherence of his ideas, but the issue is that Whiggism assumes movement, direction, and a normatively positive evolution of change, whereas the block universe denies real temporality: there is no becoming, no novelty, no agency – only timeless existence. Some versions of the block universe attempt to preserve development by proposing that the block grows. The “block” expands as new events are added to reality, but in this view, the present defines the upper boundary of the block, and the future is not truly real. This appears to be consistent with what Wright says about climate change. Everything he has to say about global warming is limited to one short paragraph: We will treat climate change as what it is: not an existential crisis but a real, physical phenomenon that is a by-product of progress. Yes, atmospheric CO2 has increased over time – but so has life expectancy. Billions of people have been lifted out of poverty. Modern medicine, telecommunications and global transportation became possible. I am willing to take the modest negative trade-off for this legacy of human advancement. From the ICJ’s perspective, this interpretation is dreadful, as the current impacts of climate change are already at odds with the rights of many groups of people. It also exhibits basic injustice, as many of the groups that suffer the most from these impacts have done next to nothing to cause the problem. However, here I am mostly concerned with the temporality of Wright’s claims. This temporality is a combination of Whiggism and blockism: so far, history has exhibited progress, but time and processes stop here, in our present moment. The third tier: nostalgia Wright’s view of time is not limited to an ultimately incoherent combination of Whiggism and blockism. There is also more than a mere hint of nostalgia. This is evident in the appeal of a Golden Age at the outset of his article: I am honoured to advance President Donald Trump’s policy of bettering lives through unleashing a golden age of energy dominance – both at home and around the world. The appeal to the Golden Age somewhat contradicts Whiggism. From a nostalgic perspective, it seems that society has been on a downward trajectory instead of progressing. In other words, regression must be possible. Within an overall Whiggish narrative, one can blame certain actors, such as the Democrats in the US political context, for causing moral and political decline.  A nationalist narrative of a “golden age” and a return to a better past (“making us great again”) is essentially connected to the denial of planetary-scale problems, such as climate change, that would clearly require novel global responses. Climate change from a real-time perspective By merging Whiggism with a block-universe ontology (either static or growing), one ends up with a pseudo-historicism that speaks of “progress” while erasing real time. In a way, such a view “performs change” through a highly selective historical narrative, while denying the ontological preconditions of real change. Real change – emergence, transformation, causation – requires a temporal ontology, where the future is real though not yet fully determined. Thus, there is no mention of global emissions that have continued to rise, their delayed effects, feedback loops, or emergent risks given multiple processes of intertwined changes. Are the basic IPCC models based on real historical time? IPCC models often treat the climate system as a bounded system with internally consistent and deterministic dynamics. The IPCC relies on modelling and uses Bayesian methods to assess uncertainties in climate projections. Bayesian statistics involve updating the probability of a hypothesis as more evidence becomes available, based on prior knowledge (priors) and new data (likelihoods). Such an approach tends to be conservative (based on moving averages, for example) and assumes the quantifiability of uncertainty. It may also convey illusory precision, especially when the underlying models or data are uncertain or incomplete. The IPCC models nonetheless indicate – in contrast to Wright – that the future is real, though the future is approached in a somewhat cautious and deterministic manner. However, many climate scientists go beyond the IPCC consensus by assuming that global heating may reach 2.5 °C or even above 3 °C degree warming by the end of the century.  From a critical scientific realist viewpoint, even such anticipations may be too circumspect. Assuming exponential growth (involving cascading events etc.) and given that recent data shows a rise from 1.0°C to 1.5°C in just 15 years (actual data taken on an annual basis, not moving averages), and using this as a basis for anticipating the future, we seem likely to reach the 2 °C mark in the 2040s and the 3 °C mark in the 2060s.  The plausibility of anticipations depends significantly on how the real openness of the future is treated. Anticipations are reflexive and can shape the future. Real time and historical change involves human freedom and ethics. The evolving universe, where time is real, is stratified, processual, and open-ended. Time involves genuine processes, real possibilities, agency, and emergent structures. Such characteristics indicate that the future is not predetermined but can be shaped by transformative agency.  To sum up, from a real historical time perspective, Wright’s combination of Whiggism, blockism, and nostalgia is a recipe for reactionary politics. Glorifying the present, thinking in a timeless way, and longing for a golden age of the past can play a major role in bringing about a dystopian planetary future.

Energy & Economics
Amsterdam, The Netherlands - Thursday, August 27, 2020 - Photo of early edition book, Adam Smith The Wealth of Nations

The Relationship Between Energy and Capital: Insights from The Wealth of Nations

by Simon Mair

Abstract To deliver low-carbon transitions, we must understand the dynamics of capital. To this end, I develop a theory of energy-capital relations by reading Adam Smith’s The Wealth of Nations from an energy-analysis perspective. I argue that, for Smith, capital is any resource used to support production with the intention of generating profits through market exchange. In The Wealth of Nations, capital enables access to new sources of energy and increases energy efficiency. This theory of energy-capital relations explains trends seen in historical energy data: because it is profit driven, capital does not save energy, it redirects it to new uses. This suggests that low-carbon investment can only enable a low-carbon transition if coupled to a systematic challenge to the profit drive.JEL Classification: B12, O44, P18, Q43, Q57Keywordseconomic growth, low-carbon transitions, Adam Smith, history of economic thought, capital, energy, capitalism 1. Introduction: Energy, Capital and Low-Carbon Transitions Under Capitalism To date, the green rhetoric of states and companies has not led to meaningful reductions in carbon emissions. In absolute terms, annual global carbon emissions from fossil fuels increased from ~6 gigatons of carbon per year in 1990 to ~10 gigatons of carbon per year in 2022 (Friedlingstein et al. 2023). Carbon emissions are largely driven by the energy system that supports the capitalist economy, and there is no evidence that this is decarbonizing at the global scale. In 2020, fossil fuels accounted for around 80 percent of total world energy supply, the same figure as in 1990 (IEA 2022). In 2022 carbon emissions from fossil fuels accounted for around 90 percent of total global carbon emissions, up from 80 percent in 1990 (Friedlingstein et al. 2023). Carbon emissions from energy and industrial processes hit an all-time high in 2023 (IEA 2024). To change this increasingly dire picture, it is essential that we understand the economic drivers of emissions, and what economic changes are needed to reverse current trends. There is disagreement over the extent and nature of economic change needed to facilitate a low-carbon energy transition. Radical economists agree that the global reliance on fossil fuels will require going beyond market-based solutions (Li 2011; Pianta and Lucchese 2020; Pollin 2019). But this still leaves us with a broad spectrum of options (Chester 2014). Can a low-carbon transition be implemented within a broadly capitalist framework if it is guided by an interventionist industrial strategy (Pollin 2015)? Or does it require changes to fundamental capitalist dynamics (Davis 2019; Riley 2023)? To cast new light on these debates, I take a step back from the immediate issues and take a history of economic thought approach. To this end, I explore the relationship between capital and energy in Adam Smith’s (1975) The Wealth of Nations. I use the resulting view of energy-capital relations to put forward an explanation of how energy use has developed under capitalism, and to explain why a low-carbon transition is unlikely without addressing core capitalist dynamics. The decision to develop the analysis of energy-capital relations from The Wealth of Nations is grounded in the more general epistemological claim that returning to older works of economic theory is a useful way to conduct economic analysis. Blaug (1990) reminds us that all current economic theory is built from seldom read historical texts, and historians of economic thought have argued that revisiting these texts offers the opportunity to uncover new ways of interpreting key ideas, providing theoretical context that may have been forgotten (Bögenhold 2021; Schumpeter 1954). Additionally, actively engaging with historical thought presents the possibility for moments of creativity as old and new ideas are brought together. For example, Mair, Druckman, and Jackson (2020) use an analysis of economic ideas in utopian texts from the twelfth to nineteenth centuries to develop a vision of work in a post-growth future, and Stratford (2020, 2023) develops a theory of rents and resource extraction grounded in an analysis of the historical evolution of the concept of rent. The general approach of critical engagement with history of thought is perhaps best developed in the Marxist literature, where a substantive body of work draws on Marx’s writings to critically explore environment-economy relationships (e.g., Malm 2016; Moore 2017; Pirgmaier 2021; Saitō 2022). On the other hand, relatively little attention has been paid to Adam Smith in the context of ecological or environmental economic analysis. Most recent interest in Smith’s environmental thought has come from environmental historians (see Steeds 2024 for a review). However, Steeds (2024), building on Jonsson (2014), has made the case for reading Smith as an ecological economist, arguing that Smith shares core ontological precepts of the discipline—notably that it is the environment that underpins all economic activity. Smith (1975) is particularly relevant to debates about low-carbon transitions because The Wealth of Nations is the starting point for an interpretation of capital theory that has become widely used in energy-economy analyses. Capital theory itself has a long and storied history, with analysts giving it a variety of characteristics (Cannan 1921; Kurz 1990; Mair 2022). Contemporary economic analyses of energy generally use a physical concept of capital. A common position for economists who focus on energy is that energy is important because energy use and capital are “quantity complements”: all else equal, when capital increases the energy used in production increases (Elkomy, Mair, and Jackson 2020; Finn 2000; Sakai et al. 2019). Conceived of as “representative machinery,” capital is seen as the physical stuff that channels energy use into production (Keen, Ayres, and Standish 2019: 41). Or as Daly (1968: 397) puts it, “physical capital is essentially matter that is capable of trapping energy and channeling it to human purposes.” This physical conception has its roots in the dominant interpretation of capital from The Wealth of Nations. Prior to The Wealth of Nations, capital was a predominantly monetary construct, but historians of economic thought argue that after The Wealth of Nations, capital is taken to be predominantly physical (Hodgson 2014; Schumpeter 1954). However, I argue that Smith’s view of capital is actually a long way from the almost purely physical views seen in much energy-economy work. Rather, Smith’s view of capital is proto-Marxist. As Evensky (2005: 141) puts it, “Whether or not it was from Smith that Marx developed his notion of capital as self-expanding value, the outlines of that conception were certainly available to him in Smith.” From Smith’s perspective, capital is defined primarily as a socio-physical construct (Blaug 1990; Evensky 2005; Meek 1954). Capital sometimes has physical forms, which enables it to interact with flows of energy, but these are always conditioned by the social dynamics of profit and exchange. Making a direct connection to energy requires reading Smith from the contemporary perspective of energy-economy analysis as developed by the subdisciplines of ecological, biophysical, and exergy economics (Brockway et al. 2019; Jackson 1996; Keen, Ayres, and Standish 2019; Smil 2017a). This is because, as a construct, “capital” pre-dates “energy,” and Smith was writing before the first recorded use of the term energy as we would understand it today (by physicist Thomas Young in 1807, see: Frontali 2014). So although work into energy—particularly among ecological economists and their forerunners in energy systems analysis (Cleveland et al. 1984; Odum 1973; Sakai et al. 2019)—uses a concept of capital that has its roots in an interpretation of Smith’s capital theory, explicit links are missing in Smith’s text. Despite this, Steeds (2024) argues that Smith’s analysis of agriculture shows an understanding of what contemporary analysts would call energy, a theme I develop here focusing on Smith’s conceptualization of capital. The rest of this article is structured as follows. In section 2, I set out an interpretation of Smith’s capital theory from The Wealth of Nations that emphasizes the way it sees physical elements of capital as defined by social forces. In section 3, I outline the ways that energy fits into Smith’s theory of capital. This is the first contribution of the article, as I make novel links between Smith’s capital theory and contemporary energy-economy analysis. In section 4, I apply this interpretation of energy-capital relations to the historical evolution of energy use under capitalism, and the question of low-carbon transitions. This is the second contribution of the article, as I argue that Smith’s capital theory highlights the importance of the social context of energy systems. Specifically, it provides compelling explanations for the phenomenon of “energy additions”—where past “transitions” under capitalism have been associated with the overall growth of energy use (York and Bell 2019). This implies that the challenge of a low-carbon transition is not only investment in low-carbon energy systems but in challenging the logic of capitalism such that low-carbon energy can replace, rather than add to, the use of high-carbon energy. 2. Capital as a Socio-physical Construct in The Wealth of Nations Interpretations of Smith’s capital theory generally emphasize its physical aspects (e.g., Cannan 1921; Hodgson 2014; Schumpeter 1954). These readings focus on Smith’s initial description of capital as a subset of the accumulation of the physical outputs of production (in Smith’s terminology “stock” [cf. Smith 1975: 279]), and the skills and abilities of workers (Smith 1975: 282). The focus on physical aspects of Smith’s capital theory makes sense from a history of ideas perspective. The physical aspects of Smith’s capital stand in contrast with earlier definitions that were primarily monetary (Hodgson 2014). There is also an intellectual lineage that can be traced in Smith’s views on capital, principally through Smith’s relationship with the French Physiocratic school whose own economic analysis emphasized physical flows (Meek 1954; Schumpeter 1954). However, the fact that Smith introduced a new role for physical goods within a broader concept of capital does not imply that Smith’s theory of capital was purely physical (Robinson 1962). Rather, Smith views capital as the accumulated monetary and physical resources that are brought into production to generate a profit. To see this, let us look first at Smith’s view of circulating capital. Smith splits capital into two forms, circulating and fixed, and he is explicit that circulating capital has both monetary and physical forms. For Smith, circulating capital is defined by the fact that to turn a profit from it, its owner must give it up in exchange for something else. Consequently, circulating capital takes multiple forms: it is the money that will be used to pay wages to a worker, the product produced by that worker, the money realized at the point of sale of the product, and the commodities purchased using the money realized. As Smith (1975: 279) puts it, circulating capital is continually going from the capitalist “in one shape, and returning to him in another. . . it is only by means of such circulation. . . that it can yield him any profit.” Circulating capital is a process of purchasing and selling resources, often with a monetary form, in order to make more money (Evensky 2005). Circulating capital has different forms (some physical, some not) at different points in its circulation, but it is consistently capital. Even when capital takes on its physical form, for Smith it is the underlying social dynamics of exchange and profit that define it as capital. In his opening to book 2, Smith argues that capital is an emergent property of exchange-based economies (Smith 1975: 276). In a society with no division of labor, he argues, people are self-sufficient, and there is very little exchange. But once you have a division of labor, you get exchange because each worker uses their labor to produce a subset of the goods needed to live. Other workers use their labor to produce a different subset of goods. The two then trade with one another to ensure all their needs are met. Drawing on the work of the Physiocrats, Smith then observes that production takes time (Schumpeter 1954). Consequently, in a market system, the purchasing of goods from other people “cannot be made till such time as the produce of his own labor has not only been completed, but sold” (Smith 1975: 276). This means that in either a monetary or barter economy, there has to be a stock of physical goods previously accumulated in order to enable work to happen before the products of that work have been sold (or are available for barter). For Smith, these goods are a form of capital. In this sense, capital can be physical commodities—but physical commodities accumulated in order to support exchange. For Smith, profits are also an essential part of the definition of capital (Meek 1954). Whether fixed or circulating, physical or monetary, what makes something capital is the desire of the capitalist to earn money from it (e.g., Smith 1975: 281, 332). Smith’s theory of profit is scattered through The Wealth of Nations and is not entirely comprehensive (Blaug 1990; Christensen 1979). However, Smith does identify a construct called profits with some core tendencies that are sufficient to group him in the classical approach to profit as surplus and deduction (Hirsch 2021; Kurz 1990; Meek 1977). For Smith, surplus is primarily derived from the value that labor adds to raw materials. This value then goes to pay the wages of the worker and other costs of production, one of which is “the profits of their employer” (Smith 1975: 66). So, Smith’s theory of profit is deductive. Profit is the money capitalists attempt to gain back from production after all costs—including wages—have been accounted for (Meek 1977). An important addition here is that the profit drive for Smith is speculative: capitalists bring capital to support production because they “expect” to generate more money (Smith 1975: 279, 332)—it is not guaranteed. The attempt to gain profit is because capitalists use this as their income (cf. Smith 1975: 69, 279). This attempt is central to the dynamics of capital because profit is the “sole motive” that a capitalist has for bringing their resources into the exchange cycle of the economy (Smith 1975: 374). To summarize, for Smith, capital is the accumulated resources (whether physical or monetary) brought to bear in support of exchange-based production, the ultimate aim of which is to provide the owner of capital with an income (profits). Consequently, it is not correct to view Smith’s capital theory as purely or even predominantly physical. Rather Smith’s capital is a socio-physical construct. This interpretation is not a refutation of other readings that emphasize the physical aspect of Smith’s theory. The physical elements are present, are important, and are relevant to our discussion of energy. However, the underlying premise is always that these physical elements are defined by social relations of profits and exchange. This analysis fits with readings of Smith that see his capital theory as proto-Marxist because of the way it frames capital in terms of social relations (Hodgson 2014; Pack 2013; Tsoulfidis and Paitaridis 2012). But it strongly cautions away from discussions of capital that abstract from these social relations in ways that leave capital as purely physical things. As with Marx (2013), when Smith talks about capital as physical things, his focus is on the way the physical interacts with social relations. 3. How Does Energy Fit into Smith’s Capital Theory? Having sketched an interpretation of Smith’s capital theory focusing on the interplay of profit, exchange dynamics, and monetary and physical resources, we can turn to the question of how energy fits into Smith’s capital theory. In this section, I draw on energy-economy analysis to suggest two key ways in which energy might fit into Smith’s capital theory: 1. Capital is used to bring new energy sources into production.2. Capital is used to make existing energy flows more efficient. 3.1. Accessing new energy sources For Smith, one of the key ways that capitalists aim to generate profits from capital is by using it to increase labor productivity (in Smith’s terms “abridging” labor, see: Smith 1975: 17, 282). Here we have a link to energy-economy analysis, where labor productivity is often described in terms of substituting human labor for other forms of energy—since the industrial revolution this has typically happened through some form of fossil fuel–powered machinery (Smil 2017a). Smith discusses machinery in a number of places across The Wealth of Nations. Indeed, Kurz (2010: 1188) writes that one of Smith’s key growth mechanisms is the replacement of “labor power by machine power.” In chapter 11 of book 1 of The Wealth of Nations (Smith 1975: 263), Smith discusses how cloth production in Italy was made more productive than in England by employing wind and water mills in the former, while the latter treaded it by foot. This is the same example pointed to by energy scientist Vaclav Smil (2017a), who argues that the introduction of waterwheels into industrial production were a source of substantive labor productivity growth. Energy-analysis allows us to say why the wind and water is more productive than the treading. Energy provides a variety of functions, known as “energy services,” which are essential for production processes (Grubler et al. 2012). These are intuitive when put in the context of everyday experiences: achieving a comfortable temperature in an office or workplace requires thermal energy. Transporting goods or people requires kinetic energy. In the case of cloth production, the fulling process requires kinetic energy to manipulate the fibers of the cloth. To deliver energy services, energy sources go through a series of transformations, known as the conversion chain (Brockway et al. 2019; Grubler et al. 2012). Energy is accessible to us through different carriers—known as primary energy sources (such as food, oil, or gas). In most use cases primary energy sources are then converted into other forms before delivering their service (Smil 2017b). This conversion is done by “conversion technologies.” Muscles are a “technology” that can be used to convert the chemical energy in food into mechanical energy. Oil or solar energy may be converted into electricity. Different economic processes may use multiple forms of energy with energy from multiple carriers requiring transformation multiple times. From the perspective of increasing labor productivity, what is important is having energy available to do “useful” work (meaning provide the specific energy services that serve the interests of the system) (Brockway et al. 2019). The more energy available to do useful work, the more economic activity can be carried out per person. One way to increase the amount of useful energy available is by adding new primary energy sources to the system. This process often requires new conversion processes that enable the energy in the primary energy sources to be accessed and converted into energy services. In the case of cloth production, the introduction of wind or water mills is an example of capital taking the form of a new conversion technology that enables access to a different primary energy source (Smil 2017b). In the human-powered treading process, solar energy is converted into chemical energy through the agricultural system. The chemical energy in food products acts as the primary energy source. People then eat this food, converting it to mechanical energy that manipulates the cloth as they tread it under foot. On the other hand, a wind or water mill introduces a new conversion technology that enables access to the energy available in wind and water by converting it into mechanical energy. Note that this process is not only about energy efficiency. Wind and water mills are typically more energy efficient than human-power, but just as crucially they are more powerful: they bring a greater quantity of energy into the process of cloth production (Smil 2017b). The importance of scale is seen across energy-economy analysis. Hall and Klitgaard (2012: 117) draw on Polyani’s (1944) substantive definition of an economy to argue that all economic activity is the application of work to transform natural resources into goods and services. In the past, most of the work of transformation was done through muscle-power, but today muscle-power is a much smaller proportion of total work carried out because of the development of machinery that allows us to supplement our muscles with the “‘large muscles’ of fossil fuels.” 3.2. Increasing energy efficiency There are places in The Wealth of Nations where we might hypothesize about energy efficiency gains explicitly. For instance, Smith tells an apocryphal tale involving a child and a fire engine, presented as an example of innovation leading to labor productivity growth. Smith writes that in the earliest fire engines a boy would be employed to open and shut different valves, until one such boy finds a way to connect the valves such that they “open and shut without his assistance” (Smith 1975: 20). Such an innovation adjusts capital in order to enable it to convert more of the primary energy source into useful energy. Prior to the boy’s innovation, the system required two primary energy inputs: the fossil energy to power the machine, and the food energy to power the boy. Once the boy innovates, the primary energy associated with his action is removed from the process and the machine uses only the fossil energy, thus increasing its overall energy efficiency. But machinery is not the only way in which humans’ access and turn energy flows toward growth of the economy in Smith’s capital theory. Smith considers the useful abilities of workers to be a form of capital and here we can see another place where energy efficiency may fit into Smiths capital theory. When defining the useful abilities of workers Smith refers to dexterity: the skills and abilities acquired by workers through the repetition and simplification of tasks. When defining dexterity Smith talks about it in terms of efficiency gains. For example, a worker specializing in the production of nails will become more skilled in their production, and hence more efficient (Smith 1975: 18). But nowhere does Smith imply that an increase in dexterity is miraculous. And although it is intimately bound up with social organization through the division of labor, we can see how energy may fit into the process. Specifically, the increase in dexterity can be understood as partly a function of the fact that energy flows are being used more efficiently. Workers learn the best way to stir the fire, to heat iron and shape the head of the nail. An increase in the skill of a worker enables them to use energy more efficiently. In this way, more efficient use of energy flows can be seen as one of the ways that the division of labor enables increases in productivity. 3.3. Summary of the energy-capital relation in The Wealth of Nations Smith views capital as the monetary and physical resources that are brought by capitalists into exchange processes with the intention of generating an income for themselves. Smith, like Marx, is clear that all production ultimately rests on inputs from the natural environment, so it is not surprising that in The Wealth of Nations we found examples of a subset of capital that generates profits by changing the way energy is used in production processes. Specifically, I presented two mechanisms that can be identified in The Wealth of Nations: bringing new energy sources into the economy (the transition from human power to wind and waterpower in the fulling process), and being made more energy efficient (through machinery innovations and specialization of labor). We can now apply this interpretation of Smith’s energy-capital theory to the question of low-carbon transitions. The examples I have elaborated support Steeds (2024: 35) notion that Smith has an “intuitive” understanding of energy. Some of the critical functions of Smith’s conception of capital can be explained in terms of how it mediates our relationship to energy. In this way, Smith’s reading is close to more modern accounts of the role of energy (Keen, Ayres, and Standish 2019, Sakai et al. 2019). But what differentiates Smith’s from these accounts is an explicit emphasis on the social context in which energy is used by capital. Some accounts of the energy-economy relationship effectively, or explicitly, reduce production to energy use. In Smith’s account by contrast, energy use is framed and shaped by social forces. Recalling Smith’s core understanding of capital from section 2, it is clear that energy is being harnessed by capital in an attempt to generate profits within a market process. In other words, in a capitalist economy where most production follows the logic of capital, the major driver of energy use will be the attempt to generate incomes for the owners of capital. This insight, though simple, is often overlooked and has profound implications for a low-carbon transition. 4. A Smithian Analysis of Low-Carbon Transitions Under Capitalism In this section, I apply the insights from the reading of Smith’s capital theory to historical data on energy use under capitalism. I argue that the theory provides a simple and compelling explanation for the constant expansion of energy use as new forms of energy have been added to the mix. Capitalists seek to use energy to grow their profits; therefore, they invest in efficiency measures or new energy sources in order to increase the total energy available to them. Energy is never saved in the sense of not being used. Rather, it is made available to new profit-seeking ventures. Across both mainstream and radical interventions into low-carbon transition debates, there is often a focus on the investment needed to grow low-carbon and energy efficiency programs (e.g., Hrnčić et al. 2021; Pollin 2015, 2019; Qadir et al. 2021). The central argument in these works is that low-carbon transitions require substantial but not unreasonable levels of investment in low-carbon energy and energy efficiency programs. Approaching this from the perspective of energy-capital relations developed in this article, we are looking at the need to transition capital from one conversion technology to another. Today, much capital takes the form of conversion technologies designed to access the energy in fossil fuels. For a low-carbon economy we need capital to take the form of conversion technologies that can access energy in wind, solar, or other low-carbon forms. It is tempting to think about this in terms of the transition described by Smith from labor power to wind power in the fulling process. However, there is a fundamental difference between the transition from one energy source to another as developed in The Wealth of Nations, and that needed in the low-carbon transition. Historically, transitions between dominant energy sources under capitalism have been consistent with Smith’s argument that capital is only motivated by the desire for profit. Past energy transitions under capitalism have been driven by a search for greater profits enabled by the new energy sources, not by pro-social or pro-ecological values. For example, Malm (2016) argues that the English transition from wood to water was driven by the desire of capitalists to concentrate and better control their workforce, simultaneously reducing losses from theft, making workers more efficient, and bringing a greater scale of energy into the production process. The consequence of the consistent searching for profits in capitalist energy transitions is that we have very few examples of energy sources declining under capitalism at the macro-scale. Under capitalism, energy transitions are better described as energy additions (York and Bell 2019). In recent decades, there has been a remarkable growth in the use of low-carbon energy sources, but at no point in this period has energy production from fossil fuels decreased (figure 1; Malanima 2022). Indeed, looking at the evolution of 9 categories of primary energy sources since 1820 (figure 1), only fodder has seen a prolonged decrease under capitalism. For instance, in absolute terms, energy from coal overtakes fuelwood as the largest primary energy carrier in the late 1800s. But after this point the energy supplied by fuelwood continues to grow. Even in the case of fodder, although it has been in decline for approximately sixty years it still provided more than twice as much energy in 2020 than it did in 1820. Looking specifically at low-carbon fuels, the charts for renewables and nuclear energy show dramatic spikes and rapid growth. But these spikes do not coincide with declines in any other fuel source, and the International Energy Agency (IEA 2023a, 2023b) reports that 2022 was an all-time high for coal production, and forecasts record oil production in 2024.   Figure 2 depicts global energy efficiency, the scale of global production, and the total primary energy use 1820–2018. Energy efficiency of the global capitalist economy has improved drastically over the two-hundred-year period covered: in 2018, producing one unit of output took only 40 percent of the energy it would have taken in 1820. But as energy efficiency has grown, so has total energy use and total output, and these changes dwarf the gains in energy efficiency. In 2018, 41 times as much energy was used as in 1820, while global production grew by 2 orders of magnitude over the same period.   From the lens of our interpretation of Smith’s capital theory, the constant expansion of fossil fuel use alongside renewables and energy efficiency gains is not surprising. The purpose of capital development and deployment in our Smithian lens is to increase income for capitalists by facilitating exchange. So, we would expect capitalists to invest in capital that enables them to access new sources of energy, like renewables, in order to bring a greater scale and quantity of energy into production. But we would also expect them to continue to invest in fossil fuels for the same reasons. More energy means more production means more profit. Likewise, we would expect capitalists to use their capital to increase energy efficiency: this reduces their costs. But we would also expect capitalists to take subsequent energy savings and use them to increase production further. As energy is used more efficiently in any given process, more energy is available to be used elsewhere in the economy or, as new energy sources are brought into production, the old sources are made available for new processes (Garrett 2014; Sakai et al. 2019; York and Bell 2019). As long as the capitalist appetite for greater incomes is present, they will seek to direct energy “savings” into new or expanded forms of production. The practical implication of this theoretical analysis is that investment in low-carbon energy sources and energy efficiency measures—no matter how bold the proposals—will not succeed without a change to the social dynamics of capitalist production. Achieving a low-carbon transition therefore requires the formidable task of coupling a large and sustained investment program in renewables and energy efficiency with a challenge to the structural logic of capital. This requires wide-ranging shifts within capitalist economies to build low-carbon energy infrastructure and develop ways of producing that disrupt the constant profit chasing of capital. The former is required to ensure action can begin now, while the latter is needed to ensure that low-carbon investments do not simply continue to expand the energy base of capitalist production. Elaborating on such possibilities is beyond the scope of this article. However, there are research programs that seek to understand alternatives to profit-driven capitalist production, notably work in post-capitalism and the post-growth/degrowth literatures that identify noncapitalist logics of production (Gibson-Graham 2014; Colombo, Bailey, and Gomes, 2024; Mair 2024; Vandeventer, Lloveras, and Warnaby 2024). A useful future direction for research lies in asking how such non-capitalist modes of production might be scaled and applied to the global energy system. 5. Conclusion In this article I have used a history of economic thought approach to analyze the relationship between energy and capital. Rereading The Wealth of Nations, I argued that Smith’s theory of capital is fundamentally socio-physical. Smith views capital as any accumulated resource that is used to support the exchange cycle of the market economy with the expectation that this will return a profit for the owner of the resource. Based on this reading, I argued that there are two ways in which energy might enter into Adam Smith’s capital theory: (1) capital is used to bring new energy sources into production; and (2) capital is used to make existing energy flows more efficient. Using this view of energy-capital relations, we can explain the major trends in historical energy-capital relations under capitalism. Over the last two hundred years, energy use has grown continuously, and the incorporation of new primary energy sources has not systematically led to reductions in older primary energy sources. This is consistent with the idea that capital is used to bring new energy sources into production. Investment in renewables is what we would expect: renewable energy technology allows capitalists to access new primary energy sources. They use this to generate more profits. They continue to invest in fossil fuel technology for the same reasons. Over the last two hundred years, there have been substantive gains in energy efficiency, and these have not led to reductions in energy use. This is consistent with the idea that capital is used to make energy use more efficient. The motivation of capitalists to make energy more efficient is to be more profitable. They then take energy savings from energy efficiency gains and use these to increase production, in an attempt to make more profits. The implication of this analysis is that investment in low-carbon technology and energy efficiency is the (relatively!) easy part of achieving a low-carbon transition. These dynamics are fundamentally compatible with the logics of capital. The barrier to achieving a low-carbon transition is that as long as this investment takes the form of “capital” (i.e., it chases profits and supports exchange processes), then it is unlikely that investment in renewables or energy efficiency programs will reduce energy use from fossil fuels. To achieve a low-carbon transition we must invest in low-carbon technology and energy efficiency, while simultaneously developing new organizational forms that challenge the capitalist dynamics of expansion and accumulation. AcknowledgmentsI would like to thank Christiane Heisse, Don Goldstein, and Robert McMaster, for their careful reviews and Enid Arvidson for her editorial work, all of which greatly improved the article. I would like to thank participants of the workshops Economic Theory for the Anthropocene (organized by the Centre for the Understanding of Sustainable Prosperity and the University of Surrey Institute for Advanced Studies) and The Political Economy of Capitalism (organized by the Institute for New Economic Thinking Young Scholar Initiative working groups on the Economics of Innovation and Economic History). Particular thanks to Richard Douglas, Angela Druckman, Ben Gallant, Elena Hofferberth, Tim Jackson, Andy Jarvis, Mary O’Sullivan, and Elke Pirgmaier for fruitful discussions. I would like to thank the Marxist Internet Archive for making The Wealth of Nations freely available.Declaration of Conflicting InterestsThe author declared no potential conflicts of interest with respect to the research, authorship, and/or publication of this article.FundingThe author disclosed receipt of the following financial support for the research, authorship, and/or publication of this article: This work was partly funded by the Economic and Social Research Council through the Centre for the Understanding of Sustainability, grant no. ES/M010163/1.ORCID iDSimon Mair https://orcid.org/0000-0001-5143-8668Note1 The full sources for the Maddison Project Database are Abad and Van Zanden (2016); Álvarez-Nogal and De La Escosura (2013); Baffigi (2011); Barro and Ursúa (2008); Bassino et al. (2019); Bértola et al. (2012); Bértola (2016); Broadberry et al. (2015); Broadberry, Custodis, and Gupta (2015); Broadberry, Guan, and Li (2018); Buyst (2011); Cha et al. 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Diplomacy
24.01.2023 - Foto oficial da VII Cúpula da CELAC (52647149569)

Confederation of Latin American and Caribbean Nations as a strategy for integration with Asia and Africa

by Isaac Elías González Matute

Abstract This article analyzes the challenges and threats to global peace and stability, derived from the unipolar geopolitical vision of the United States and the application of the so-called “Donroe Doctrine”, promoted during the Trump administration and characterized by the “Maximum Pressure” strategy promoted by the America First Policy Institute. Through a methodology of documentary review of primary and secondary sources, together with a prospective analysis of risk trends, the strategic and leading role of CELAC in the defense of the interests of Latin America and the Caribbean is dimensioned, highlighting how this organization opens opportunities to strengthen trade relations with Asia and Africa, contributing to the construction of a multipolar world order by promoting initiatives such as China's Belt and Road as an alternative mechanism to the global economic war of the United States and its “US-CUM” project, framed in its foreign policy based on national security interests. Introduction 21st-century geopolitics has undoubtedly been characterized by strong pragmatism in the exercise of states’ foreign policy, balancing between two visions — specifically between the Unipolar Geopolitical Vision and the Multipolar Geopolitical Vision — which have categorized the praxis of international relations of the so-called Global North and Global South, respectively; a context that clearly shows a fervent struggle for political control of resources and for hegemony, where the United States competes for global supremacy with emerging poles of power such as Russia and China. Given the current international scenario, it becomes increasingly imperative to identify and understand both the needs and the challenges for the planet’s sustainable development, from a global perspective in all areas (economic, political, social, geographic, cultural, environmental, and military). In this regard, the present research prospectively analyzes the administration of President Donald Trump as part of the multidimensional threats that the U.S. represents not only for Latin America and the Caribbean but also for Africa and Asia, considering the impact of current U.S. foreign policy both on the American continent and for Africa and Asia. All of this is with a view to highlighting, through debate, the importance of rethinking CELAC as an international organization that systematically advances in a transition process from “Community” to “Confederation,” as an intergovernmental entity with the capacity to confront the threats of a unipolar geopolitical vision foreign policy, and in line with the goals established as development projects under the so-called “CELAC 360 Vision” [1], aligned with the Sustainable Development Goals (SDGs) of the 2030 Agenda, adopted by the United Nations (UN). Regarding the referred geopolitical transition, it is worth noting, as Guendel (2024) states: “The rising multipolarity will provoke, starting from this first decade of the 21st century, the emergence of historical events that mark the reaction to the expansion of Western geopolitical power to those old regions that were under another geopolitical influence. Among the most notable events, we must consider the processes of de-dollarization of the world economy, the war in Ukraine, the tension in the Taiwan Strait, and, of course, the war in Palestine. Under this reference, it is possible to characterize the current international geopolitical scenario as a moment of transition between the previous form of unipolar power and the new multipolar relations (123) [2]. Building on the above, the current geopolitical transition is a systemic process sustained by the multipolarity of international relations, driven by the struggle for power and the quest for economic dominance in both domestic and international markets. This has given rise to a growing trend in states’ foreign policy toward the construction of a multipolar world, where territorial governance over strategic resources forms part of the necessary geopolitical counterweight in regional dialogue, cooperation, and integration to face the challenges of the present century. The changes in the world order require Latin America and the Caribbean, Africa, and Asia to promote an idea of continental unity, framed within an anti-imperialist mindset, allowing progress toward Latin American, African, and Asian continentalism, compatible with the multipolar geopolitical vision, under the sustainable development approach put forward through the BRICS. Regarding this last international actor, Guendel (2024) notes: “In the development of a new phase of the globalization process after the end of the Cold War — what was geopolitically a new scenario for consolidating unipolar power relations — new lateral actors emerged, the so-called BRICS, which, by proposing alternative ways of thinking and economic relations favorable to Third World countries, would foster the emergence of a new global geopolitical scenario of multipolar relations (123). According to this scenario, the trend toward multipolarity in international relations —strengthened by globalization and technological advancements — will allow for the consolidation of a multipolar world, though not without first becoming a causal factor of various conflicts and challenges on a global scale, specifically in all spheres of power (economic, political, social, geographic, cultural, environmental, and military). Hence the importance of formulating a strategy for regional integration of Latin America, Asia, and Africa that aligns with global sustainable development plans — such as China’s Belt and Road Initiative — which, combined with the BRICS, constitute two fundamental pillars in strengthening the multipolar world. However, this will also accentuate the differences in geopolitical interests between the strategic agenda of the Global North (led by the U.S. through the G7) and that of the Global South (BRICS countries) regarding the projected economic growth of each. Having this in mind, the present research aims to analyze the challenges and threats to global peace and stability as a consequence of the U.S. unipolar geopolitical vision and the application of the so-called “Donroe Doctrine,” promoted by President Donald Trump and the policies advanced by his main think tank, the America First Policy Institute (AFPI), characterized by the “Maximum Pressure.” Development U.S.: Foreign policy oriented toward a new global fundamentalism The new White House administration, under the presidency of Donald Trump, challenges the so-called conservative Establishment [3] in the U.S., and according to Myriam Corte (2018), in her article on “Analysis of the U.S. ‘Establishment’” [4], the following statement is mentioned: “The residence of the current president is the site that houses political power, but at the same time reflects migratory power, since it is a construction built in the 18th century by African slaves, based on Irish architecture. As for the cabinet, it is made up of wealthy white men, who are responsible for administering power, but in the current administration some members have been accused of domestic abuse and misogynistic practices; therefore, it is important to identify whether Trump represents that old, conservative, and rigid establishment, or if there is any change” (1). According to what has been stated, there is undoubtedly a perception of a different stance associated with the “Deep State” Establishment in the U.S., with relevant structural changes that have a strong impact on both domestic and foreign policy. An example of this, according to Myriam Corte (2018), is represented in the very fact that: “Another variant is the Bible study group that was formed in the White House, as well as the group of fellows made up of 147 young people between the ages of 21 and 29, with a characteristic profile: all are wealthy individuals, among them the son of the president of the World Bank, who represent the new generation that will inherit power…” (1). In this context, the U.S.’s status as a major power revolves around a scenario of geopolitical conflict, even prioritizing its national interests over those of its main strategic allies, as a consequence of the systemic deterioration of its hegemony vis-à-vis Russia and China. This has generated hostile political actions as strategies to justify its territorial ambitions, in an attempt to counter the exponential growth of the BRIC and the crisis this represents for the global dollar system. A clear example of some hostile political actions is reflected in what happened with its European (NATO) partners recently, as well as with Canada, Mexico, and Greenland, becoming part of the geopolitical pragmatism promoted by the Donald Trump administration. Now, in direct relation to the unipolar geopolitical vision that characterizes U.S. foreign policy, it oscillates between defending the interests of the conservative Establishment and the postulates and ideals promoted by the AFPI [5], which maintain a clear influence in the conduct of U.S. foreign policy, acting as a think tank. Regarding this matter related to the influence of AFPI in the Donald Trump administration, it is worth mentioning some aspects associated with the practice of U.S. foreign policy for a better understanding of its current dynamics, which revolve around a new global fundamentalism with a marked unipolar geopolitical vision. Among them, we have the following: New global fundamentalism against the conservative national security establishment The AFPI serves as the main think tank for the Trump administration, according to Seibt (2024), who in his article “The America First Policy Institute, a discreet ‘combat’ machine for Donald Trump” [6], states the following: “America First” is often associated solely with Donald Trump’s isolationism. But behind the scenes, it is also linked to an ultra-conservative think tank with growing influence, the America First Policy Institute (AFPI)” (1); a fact that justifies the appointments made before and after Donald Trump’s swearing-in as President of the U.S., as he has been using an increasingly influential group in high-level decisions, subtly and systematically modifying changes in strategic agendas from the so-called “Deep State,” starting from what Seibt (2024) also refers to: “…the election of Brooke Rollins marks the consecration of AFPI’s influence, of which she is president, and which has been described by the New York Times as ‘a group as influential as it is little known’ in the orbit of Trumpism… Brooke Rollins is not the only person from AFPI that Donald Trump has chosen for his future government. Linda McMahon, chosen to be Secretary of Education, is the director of this think tank. And let us not forget Pam Bondi, who has been called to replace the too-controversial Matt Gaetz as Attorney General, and who oversees all the legal matters of the America First Policy Institute” (para. 5). In this context, there is clear evidence of AFPI’s influence within the Trump administration; therefore, to understand where the unipolar geopolitical vision recently adopted by the U.S. is headed — together with its prospective analysis — it is necessary to understand, from the very foundations of AFPI, how this organization envisions the path of what it calls, from a supremacist perspective, “America First.” To this end, it is enough to review the main AFPI website [7], where both its vision and analysis of what the U.S. should be, as well as how it should approach the exercise of foreign policy, are broken down and organized — with a curious detail that sets it apart: placing the interests of the American people above the interests of the conservative National Security establishment, stimulating the need to create a nation different from what they consider a “theoretical United States.” As AFPI (2025) states and describes: The Center for American Security at the America First Policy Institute defends Americans rather than a “theoretical United States” imagined by Washington’s national security establishment. The exercise of American power requires a clear justification, and an “America First” approach ensures that such power is used for the benefit of Americans. To promote this objective, the Center seeks to ensure the rigorous advancement of policies that constitute an authentically American alternative to the increasingly obsolete orthodoxy of Washington’s foreign and defense policy… (para. 2). As outlined, AFPI both promotes and warns about the exercise of power, prioritizing U.S. interests, as long as these remain distant from what it considers the “obsolete orthodoxy of foreign policy” that has characterized the U.S. for decades and centuries. In this sense, the likelihood increases of perceiving the presence or formation of a different establishment in the U.S., one that rivals the Anglo-Saxon conservatism rooted since the nation’s very founding. Domestically, the perception of a new global fundamentalism in U.S. foreign policy grows — one with an even more marked unipolar geopolitical vision of an imperialist nature — based on what AFPI (2025) doctrinally dictates in terms of foreign policy: The phrase “America First” refers to an approach rooted in the awareness of the United States’ unique role in the world and its unparalleled ability to do the most for others when its people are strong, secure, and prosperous. It means that any commitment of American lives or dollars abroad must bring concrete benefits to the American people. Every investment of U.S. resources must generate a substantial security benefit (para. 3). From this, it is possible to infer the direction of the U.S. strategic agenda under the current administration and doctrinally supported by AFPI as its main think tank. However, the deep changes that are occurring — both inside and outside the U.S. — and how the global economic and financial situation fluctuates because of these changes, in a certain way, compel major economies to reconsider new mechanisms for economic and financial coordination and cooperation. This includes strengthening regional integration frameworks that allow them to navigate the ongoing process of reconfiguring the current world order, laying the groundwork for the construction of a multipolar world. Proxy Control of Global Territorial Governance, Backed by the “Donroe Doctrine” The exercise of current U.S. foreign policy, characterized by a unipolar geopolitical vision under the new Trump administration, is the result of the application of a doctrine carefully designed and reformulated from its dogmas, supported by a strong religious fundamentalism and associated with racial supremacism; wherein the U.S. seeks to perpetuate its global hegemony by returning to its original imperialist character. All of this turns the exercise of U.S. power toward National Security, but with a practical approach different from the so-called “obsolete orthodoxy of conservative foreign policy.” As AFPI (2021) has emphasized since its founding: Religious freedom is a fundamental human right guaranteed not only in the Constitution of the United States but also in Article 18 of the United Nations Universal Declaration of Human Rights. It is a natural right inherent to all of humanity (para. 3). With the above, at first glance, AFPI appears to delineate its religious fundamentalism, oriented toward the promotion of a new global fundamentalism through the exercise of foreign policy that justifies its actions in favor of U.S. supremacist interests, in line with what AFPI (2021) reiterates as its mission on its platform: AFPI exists to promote policies that prioritize the American people. Our guiding principles are freedom, free enterprise, national greatness, U.S. military superiority, foreign policy engagement in the interest of the United States, and the primacy of American workers, families, and communities in all we do (para. 1). To this, we must add the disposition — regarding national security — of driving U.S. supremacism through the application of Hard Power [8], economic warfare, and the increased implementation of Unilateral Coercive Measures (UCMs) against any country that contravenes U.S. interests, by perpetuating interventionist policy in all spheres of power (economic, political, social, geographic, cultural, environmental, and military). An example of the above is referred to by AFPI (2025) on its website [9], as follows: The American victories in World War II and the Cold War established our country as “the last best hope for man on Earth.” The cause of freedom everywhere in the world depends on a strong United States. With our country secure, we can, with greater confidence, promote American security abroad. U.S. security is exemplified by a strong military, fair trade agreements, alliances that are equitable, aggressors who are isolated, and those who harm us, destroyed. The AFPI views American security abroad as a prerequisite for peace at home: always putting American interests first. This includes moving away from endless and unnecessary wars to rebuild the homeland, while also understanding our indispensable role in maintaining a peaceful world… (para. 4). With a brief reading of the above, it is possible to see at first glance the practical description of current U.S. foreign policy, starting from the fact of recent attempts to end the Ukrainian conflict; however, skepticism when addressing both the geopolitical feasibility and the reliability of the proposals made by the Trump administration reveals a hidden objective, particularly associated with proxy control of global territorial governance through hostile policies and the use of the government itself as a weapon. An example of this is the stimulation of a trade war by the U.S. against Canada, Mexico, and the European Union (NATO allies), all with the aim of establishing as a rule the use of Hard Power for political persuasion over strategic resources — an example of this being the recent (and forcibly) signed rare earths agreement by Ukraine — in favor of the United States. U.S.-CUM, a New Nation-State and Persuasive Technology: Utopia or Global Geopolitical Threat? Geopolitical changes in the 21st century are advancing in parallel with technology, the economy, and global energy interdependence. For this reason, the use of Persuasive Technologies [10], through various media and information channels, plays a fundamental role in creating opinion frameworks and the mass manipulation of perceptions on a global scale. In other words, in the Era of Disinformation, technology is the primary tool, stemming from the communication needs of modern society. In this regard, Tusa et al. (2019) state the following: “…fake news has always existed. What is happening now is a greater emergence on open and free access platforms, which causes this type of information to grow exponentially in a matter of seconds. Therefore, fake news creates a wave of disinformation, a fact that motivates academia and civil society to counter it, to achieve the return of good journalism and truthful information” (20). [11] In this context, current disinformation processes respond to pre-established objectives by power poles linked to fluctuating geoeconomic interests in the world order, in which the Global North with a unipolar geopolitical vision and the Global South with a multipolar geopolitical vision are in open confrontation. In relation to this, Valton (2022) points out: “…economic globalization, finance, and the development of new technologies have opened spaces for the new geoeconomy. Thus, geoeconomy as part of the process of change plays an essential role that affects international relations, with an impact on international trade, global markets, and conflicts in the quest for capital accumulation. Geopolitical interests are closely linked to the economic gains of major capitalist powers and transnational corporations in their eagerness to increase their revenues, maintain and expand their area of influence in other regions, at the expense of the indiscriminate exploitation of the natural resources of underdeveloped countries, with high poverty rates and environmental damage” (2). [12] Now, considering the unipolar geopolitical vision of U.S. foreign policy and the doctrinal influence of the AFPI in the new Trump administration, there is a curious growing communication campaign on different digital platforms, specifically associated with persuasive technologies, that fosters the perception of the creation of a new State called U.S.-CUM. While this corresponds to a very subtle disinformation campaign and somewhat utopian in nature, it is nonetheless surprising that, in the facts and actions of the new White House administration, they have not stopped flirting with certain ideas related to the mentioned State in question.   To be more specific, the U.S.-CUM is a utopian idea of a territorial expansion of the current United States, adding the territorial spaces of Canada and Mexico with the goal of increasing the economic, political, financial, and military capacities of the U.S., to counter emerging powers and prevent the consolidation of a multipolar world. An example of this can be found in some posts made on the Reddit platform, a social network popular among the U.S. population, similar to Instagram, X, TikTok, and Facebook, among others. The U.S.-CUM utopia has now moved from a mere concept to a possible threat to global geopolitics, the moment the foreign policy of the Trump administration suggests the possibility of territorially adding Canada, turning it into the 51st state of the United States. Colvin (2025), in his AP article titled “Trump says he is serious about making Canada the 51st U.S. state,” refers to the following: President Donald Trump said he was serious about wanting Canada to become the 51st state of the United States in an interview aired Sunday during the Super Bowl pregame show… The United States is not subsidizing Canada. Americans purchase products from the resource-rich nation, including raw materials such as oil. Although the goods trade deficit has grown in recent years to $72 billion in 2023, it largely reflects U.S. imports of Canadian energy… (paras. 1-4). [13] In relation to the same policy undertaken with Canada, the Trump administration began a very dangerous strategy against its territorial neighbors, with the following actions: declaring Mexican drug cartels as terrorist groups (knowing how the U.S. has manipulated the concept of terrorism to justify military interventions), implementing migrant deportation policies, waging a fight against fentanyl, and additionally launching a tariff war with both Mexico and Canada. It has also reiterated its intention to annex Greenland, accompanied by threats of tariffs and a trade war against Denmark and other EU countries, including undermining the existence of NATO. All the above is carried out under the close advice and influence of the AFPI, clearly reflected in its supremacist doctrinal positions and aspirations to create a large imperialist nation. An example of these ambitions has been openly published by various international media outlets, including the news channel FRANCE24. In this outlet, Blandón (2025) refers to the following: During a meeting with NATO Secretary General Mark Rutte, U.S. President Donald Trump reiterated that control of Greenland is necessary to improve international security, while once again confirming his interest in annexing this territory… Outgoing Greenland Prime Minister Mute Egede responded on the social network Facebook: “The U.S. president has once again raised the idea of annexing us. Enough is enough!”, and added that he will call on the leaders of all parties to convince them to prevent it… (paras. 1, 2).   In other words, it is appropriate to infer that the direction and intentionality of the foreign policy of the new Trump administration is aimed at territorial expansionism and the promotion of proxy control of global territorial governance, supported by the “Donroe Doctrine” and enhanced through the use and development of Persuasive Technology, aligned with a global strategic agenda (influenced by the AFPI), which seeks to counter the strengthening of a multipolar world and perpetuate U.S. imperialist hegemony under a global supremacy fundamentalism. CELAC as a Geopolitical Counterweight to the Real Threat of the U.S. and Its New Imperialist Format for Hegemonic Survival The Community of Latin American and Caribbean States (CELAC), as an intergovernmental organization, currently acquires strategic value for the entire continent and its sustainable development, within the framework of creating new mechanisms for coordination, cooperation, and regional integration with Africa and Asia — especially China — through the Belt and Road Initiative, considering the entire current geopolitical context where markets play a predominant role in defining internal policies and in directly influencing the strategic agendas of each nation's foreign policy, according to constantly changing global challenges, heightened by the stance adopted by the Global North, led by the U.S., against the Global South, led by BRICS countries. Once the real threat posed by the U.S. has been identified — based on the unipolar geopolitical vision that has characterized the exercise of its foreign policy — this is compounded by the supremacist trend in implementing Unilateral Coercive Measures (UCMs) [14] against free and independent nations that, upholding the principle of self-determination, do not submit to or share the interests of the Anglo-Saxon establishment, promoted by the new U.S. administration. Now then, conducting a prospective analysis of how and on what grounds the U.S. sustains and describes its current hegemonic behavior, it is possible to predict, with certain elements and data, what its courses of action will be — courses that Latin America and the Caribbean, as well as Africa and Asia (especially China), should consider. Among these, the following stand out: Territorial Expansion of the U.S. Trade War The current trade war declared between the U.S., Canada, and Mexico — initially through the reciprocal imposition of tariffs — considering the influence of the AFPI as a U.S. Think Tank, is clearly perceived as territorial expansion, in search of proxy control over territorial governance previously mentioned, of all strategic resources in Latin America and the Caribbean. This comes because of the fiscal, economic, and financial weakening the U.S. is experiencing through the increase of public debt, which is practically unsustainable. In this sense, the actions taken by the Trump administration in appointing certain cabinet positions can be understood to some extent. However, it is curious and at the same time causal that many appointments obey and are related — directly and indirectly — to the training of officials associated with and linked to the AFPI, as part of its strategic objective. An example of this are the words of Colonel Robert Wilkie, co-chair of the Center for American Security, member of the AFPI, quoted by King (2025) in his press article titled “AFPI Welcomes President Trump’s Renewal of the American Dream”, where the following was stated, making direct reference to peace through strength: President Trump proclaimed that America is back, which means our Armed Forces are back: the greatest force for peace in the history of the world. He has restored the highest combat standards so that our soldiers fight, win, and return home to their loved ones as soon as possible. President Trump has restored the place of honor our warriors hold in the hearts and minds of the American people. He has restored America’s deterrent power and told the world that the most powerful words in the language are: “I am an American citizen.” Our borders are stronger, our seas safer, and every wrongdoer knows that the eagle is watching them. (para. 6) The above statement does not set aside its imperialist and supremacist character, denoting the philosophical and doctrinal thinking deeply rooted in the officials who hold government functions at all decision-making levels, promoting pro-U.S. policies that disrespect international law and encourage the establishment of a rules-based world order, with full disregard for the international rule of law. This is, in fact, a very complex and dangerous geopolitical situation, which threatens not only the self-determination of peoples, but also the ability to advance in areas of coordination, cooperation, and integration to achieve the Sustainable Development Goals (SDGs) adopted in the United Nations 2030 Agenda, to which CELAC countries adhere through the implementation of development plans seeking mutual benefit. Now then, the world order is in permanent change, with a tendency toward the consolidation of a multipolar world because of the crisis of capitalism and the Anglo-Saxon economic model represented in the Bretton Woods System. This situation favors the opening of new mechanisms supported by the multipolarity of international relations, depending on the behavior of the world economy, as a result of the policies of both the U.S. and emerging powers—especially the BRICS countries. However, it is precisely the economic pulse that will redefine the hostile actions of the U.S. in defense of its global hegemonic power, equally and in parallel influenced by the energy capacities of the world powers in conflict — an element that is preponderant in geopolitical influence. An example in this chapter is Russia’s advantage in gas and oil during the Ukrainian conflict. The exponential economic growth of the BRICS compared to the G7 is the clearest expression of the multilateral influence trend of member countries, in line with the multipolarity of international relations, where the geopolitical positioning of both the Global North (G7) and the Global South (BRICS) can be clearly observed. This economic and financial disparity accelerates the weakening of the Bretton Woods System and, consequently, the collapse of the dollar system within the Anglo-Saxon economic model, leading to the loss of hegemonic influence of the Global North countries — especially the U.S. as its main exponent. Other data are relevant when conducting a prospective analysis, with the aim of identifying growth and sustainable development opportunities, as well as understanding the challenges to achieving strategic objectives for comprehensive development by nations. Among the data to consider in the prospective analysis, we have the following chart, associated with excessive global consumption in the 21st century compared to the 20th century:   According to the chart on excessive global consumption, in only six years of progress into the 21st century, modern society has exceeded more than half of what it consumed in the 20th century, with a 75% increase above the average recorded over the last 100 years — a truly alarming percentage with a tendency to increase, as a consequence of economic activity, technological advancement, and the increase of armed conflicts worldwide. Within this context, the U.S. will increasingly seek to influence countries that significantly represent an economic interest in terms of territory, population density, manufacturing and industrial capacity, and geographic position. Through proxy control of territorial governance, it will aim to increase its hegemonic capacity in the economic and financial spheres against its main geopolitical rivals in the struggle for global supremacy — namely Russia and China — whose multipolar geopolitical vision entirely rivals the unipolar geopolitical vision of U.S. foreign policy. Given this scenario, CELAC presents a fundamental characteristic that allows it to move forward as a geopolitical counterweight to the U.S., broken down as follows:Territorial extension: all member countries together cover an enormous territorial space rich in strategic resources, with common areas of influence and mutual interest for sustainable development. Shared future, based on history, language, customs, and other cultural expressions that strengthen Latin American and Caribbean identity, which can be leveraged in the processes of regional consultation, cooperation, and integration with Africa and Asia. The increase in the hostile trend of U.S. foreign policy worldwide will require greater effort from CELAC to advance in consolidating full regional integration. However, the current progress of the intergovernmental organization has been limited to certain and specific areas, namely the economic, cultural, social, and political spheres of its members. Transition toward the Confederation of Latin American and Caribbean States as a strategy for geopolitical counterbalance and sustainable development For CELAC to consolidate itself as a geopolitical counterweight to U.S. hegemonic ambitions in the region, it must be grounded in the exercise of a foreign policy with a multipolar geopolitical vision, compatible with the mutual sustainable development interests of the Global South. In this regard, Palacio de Oteyza (2004), in his essay "The Imperial Image of the New International Order: Is This Political Realism?" states the following: “The second realistic image of the international order, partially compatible with the geoeconomic image, consists of a return to a traditional multipolar system of balance of power, but with a decisive weight given to the military factor. The multipolar system is characterized by the absence of a hegemon and a flexibility of alliances among the great powers, aimed at restraining any potential challenger” [13]. In this context, the geopolitical counterweight that CELAC needs to confront the U.S.’s hegemonic ambitions in the region — and even globally — is regional integration in other areas not currently contemplated by the Community of Nations due to its nature. That is, increasing integration in the military, geographic, and social spheres through the transition toward a confederation of nations would enhance international relations capabilities, contributing to the adoption of deterrent measures for the prevention of armed conflicts and even facilitating its integration into other centers of power with a multipolar geopolitical vision, such as the Association of Southeast Asian Nations (ASEAN), to further strengthen relations with both Russia and China and their respective sustainable development plans. Economic opening and new formulas for regional integration with Africa and Asia An economic opening is the result of the globalization process, the advancement of new technologies, and the effects of the exercise of states’ foreign policies in accordance with their interests and the geopolitical vision they adopt, for geopolitical analysis that enables the identification of risks, threats, and opportunities in the international arena. That said, within the framework of regional integration, CELAC must also prioritize investment sectors for the establishment of common development interests among CELAC, Africa, and Asia. One of the most notable current realities is the fact that the Global South’s economy began systematically, setting challenges and then experiencing growth in less time compared to the growth of the G20, led by the U.S., with China taking the lead according to the percentage value recorded in 2024. In this scenario, CELAC, by reconsidering its transition toward a Confederation of Latin American and Caribbean States, would allow for greater autonomy in its integration into the global architecture implied by the strengthening and consolidation of the BRICS at the global level as an alternative system to the Bretton Woods System. In doing so, advances toward strengthening regional integration — embedded within a new multipolar world, with the combined capabilities of the Global South — can become, more than a reality, a necessity to confront the real threats posed by the U.S., serving as a geopolitical counterweight and a tool for insertion into the multipolar world through continental alliances between Latin America and the Caribbean, with Africa and Asia. Conclusions It was possible to assess the leading role of CELAC and its strategic nature in defending the regional interests of Latin America and the Caribbean, opening a world of opportunities in trade relations with Asia and Africa for the construction of a multipolar world through the promotion of China’s Belt and Road Initiative as an alternative mechanism to confront the U.S. economic war on a global scale and its project to create the so-called “U.S.-CUM”, as part of its foreign policy based on its national security interests. In this regard, in an environment of geopolitical changes and international crisis, as part of the transition process toward the consolidation of a multipolar world, CELAC can promote or drive significant advances aimed at the creation of a Confederation of Latin American and Caribbean Nations (CONLAC) as part of a strategy for integration with Asia and Africa, considering the multipolar geopolitical vision shared by the Global South, where the concept of shared development represents a key point for international dialogue and cooperation — specifically in the economic, social, political, geographic, cultural, environmental, and military spheres. All of this would serve to act as a geopolitical counterweight to the threats and global challenges promoted by the U.S., in the exercise of its unipolar geopolitical vision in foreign policy, of an imperialist, hegemonic, and supremacist nature. Notes [1] Fuente: https://celacinternational.org/projects/[2] Revista Comunicación. Año 45, vol. 33, núm. 1, enero-junio 2024 (pp. 120-133). Fuente: https:// www.scielo.sa.cr/scielo.php?script=sci_arttext&pid=S1659-38202024000100120[3] Conjunto de personas, instituciones y entidades influyentes en la sociedad o en un campo determinado, que procuran mantener y controlar el orden establecido. Fuente: https://dpej.rae. es/lema/establishment[4] https://gaceta.politicas.unam.mx/index.php/poder-estadounidense/[5] https://americafirstpolicy.com/issues/security/national-security-defense[6] https://www.france24.com/es/ee-uu-y-canad%C3%A1/20241126-el-america-first-policy-institute-una-discreta-m%C3%A1quina-de-combate-de-donald-trump[7] https://americafirstpolicy.com/centers/center-for-american-security[8] El poder duro se da cuando un país utiliza medios militares y económicos para influir en el comportamiento o los intereses de otras entidades políticas. Es una forma de poder político a menudo agresiva, es decir, que utiliza la coerción. Su eficacia es máxima cuando una entidad política la impone a otra de menor poder militar o económico. Fuente: https://www. jagranjosh.com/general-knowledge/what-isthe-difference-between-hard-power-and-softpower-1608095574-1[9] https://americafirstpolicy.com/centers/center-for-american-security[10] La tecnología persuasiva está concebida para permitir que los usuarios voluntariamente cambien sus actitudes o comportamientos por medio de la persuasión y la influencia social. Al igual que la tecnología de control, utiliza actuadores y un algoritmo de influencia para ofrecerle información eficaz al usuario. Fuente: https://osha.europa.eu/es/tools-and-resources/eu-osha-thesaurus/term/70213i#:~:text=Context:,ofrecerle%20informaci%C3%B3n%20eficaz%20al%20usuario[11] https://revistas.usfq.edu.ec/index.php/perdebate/article/view/1550/2661[12] Fuente: https://www.cipi.cu/wp-content/uploads/2022/09/1-elaynevalton.pdf[13] https://apnews.com/article/trump-canadagolfo-america-super-bowl-bret-baier-musk-cc8848639493d44770e60e4d125e5a62[14] Medidas Coercitivas Unilaterales.[15] Revista CIDOB d’Afers Internacionals, núm. 64, p. 7-28 References Colvin, J. (2025, 9 de febrero). Trump dice que habla en serio al afirmar que Canadá sea el estado 51 de EEUU. AP News. https://apnews.com/article/trump-canada-golfo-america-super-bowl-bret-baier-musk-cc8848639493d44770e60e4d125e5a62Corte, M. (2018, 7 de mayo). Análisis del ‘establishment’ estadounidense. Gaceta UNAM. https://gaceta.politicas.unam.mx/index.php/poder-estadounidense/Guendel Angulo, H. (2024). Escenarios de transición: De la geopolítica mundial unipolar a la multipolar. Revista Comunicación On-line. https://www.scielo.sa.cr/scielo.php?script=sci_arttext&pid=S1659-38202024000100120Palacio de Oteyza, V. (2003). La imagen imperial del nuevo orden internacional: ¿es esto realismo político? Revista CIDOB d’Afers Internacionals, (64), 7-28. https://www.cidob.org/publicaciones/la-imagen-imperial-del-nuevo-orden-internacional-es-esto-realismo-politicoSeibt, S. (2024, 26 de noviembre). El America First Policy Institute, una discreta máquina de "combate" de Donald Trump. France24. https://www.france24.com/es/ee-uu-y-canad%C3%A1/20241126-el-america-first-policy-institute-una-discreta-m%C3%A1quina-de-combate-de-donald-trumpTusa, F., & Durán, M. B. (2019). La era de la desinformación y de las noticias falsas en el ambiente político ecuatoriano de transición. Perdebate. https://revistas.usfq.edu.ec/index.php/perdebate/article/view/1550/2661Valton Legrá, E. (2022). La geopolítica de la tecnología: una visión sistémica. CIPI. https://www.cipi.cu/wp-content/uploads/2022/09/1-elaynevalton.pdfZelada Castedo, A. (2005). Perspectiva histórica del proceso de integración latinoamericana. Revista Ciencia y Cultura, (17), 113-120. Universidad Católica Boliviana San Pablo, La Paz, Bolivia.

Diplomacy
President Donald Trump poses for a photo with President Ilham Aliyev of Azerbaijan and Prime Minister Nikol Pashinyan of Armenia, Friday, August 8, 2025, in the Oval Office. (Official White House Photo by Daniel Torok)

Historic Breakthrough for Peace in the South Caucasus?

by Jakob Wöllenstein

Pashinyan and Aliyev sign groundbreaking agreements with Trump on peace and infrastructure projects between Armenia and Azerbaijan On August 8, Armenian Prime Minister Nikol Pashinyan and Azerbaijani President Ilham Aliyev met with U.S. President Donald Trump at the White House for a “historic peace summit.” Both countries declared a permanent renunciation of war, endorsed 17 negotiated provisions of a future peace treaty, and formally withdrew from the OSCE Minsk Group. At the heart of the agreement lies the “Trump Route for International Peace and Prosperity” (TRIPP), an infrastructure initiative in Armenia’s Syunik region encompassing railways, pipelines, and fiber-optic networks. In exchange, the United States receives exclusive development rights for 99 years, while Armenia retains formal sovereignty over the territory. The deal diminishes Russia’s regional influence, strengthens Turkey’s strategic position, and provokes discontent in Iran. For Armenia, the agreement opens up new trade opportunities but also entails risks due to the rupture with traditional partners and domestic political criticism. Azerbaijan gains a direct land corridor to Turkey, access to new markets, and enhanced international prestige. For the United States, the deal offers economic and security benefits as well as a boost in global political standing. The European Union sees potential for regional stabilization and new trade routes but must acknowledge its diminished role as a mediator compared to Washington. If successfully implemented, the agreements could mark a historic turning point for the South Caucasus. Three-Way Summit at the White House While the world was watching the American tariff ultimatum to Putin, wondering whether a ceasefire in Ukraine might be imminent, an unexpected high-level meeting took place at the White House on August 8—one that could also make history and is at least indirectly linked to the larger conflict in Eastern Europe. Donald Trump personally received Armenian Prime Minister Nikol Pashinyan and Azerbaijani President Ilham Aliyev for what he—never shy of grand words—had announced as a “historic peace summit.” Against the backdrop of the nearly four-decade-long, geopolitically charged conflict between the two countries and the resulting blockade in the South Caucasus, this represented a breakthrough in efforts toward a peace treaty between Yerevan and Baku. Several agreements and contracts were signed. In addition to separate bilateral economic and investment deals with the U.S., and the official withdrawal of both capitals from the OSCE Minsk Group (a format established in 1992 to resolve the Nagorno-Karabakh conflict), two documents stand out in particular. Letter of Intent: Peace Treaty The first is a letter of intent in which both governments—under the symbolic mediation and patronage of the U.S.—reaffirm their commitment to finalize the ongoing peace treaty. The 17 points already negotiated are set as binding. Both parties declare their intention to end all wars permanently and renounce any acts of revenge. The core issue remains the Nagorno-Karabakh conflict, which since the late 1980s has claimed up to 50,000 lives and caused the displacement of hundreds of thousands. After more than thirty years of fruitless international mediation, Azerbaijan had created facts on the ground through its (re)conquest of Nagorno-Karabakh in two offensives in 2020 and 2023. Since then, Pashinyan’s government has sought a peace treaty, aiming to open borders not only with Azerbaijan but also with its close ally, Turkey. This effort entails effectively relinquishing claims to the Nagorno-Karabakh region, historically inhabited by Armenians for centuries. However, Baku had repeatedly made additional demands, such as amending the Armenian constitution or granting a corridor to its exclave of Nakhchivan through Armenian territory in the strategically sensitive Syunik/Zangezur region.[1] This long, narrow strip of land in southern Armenia—only about 30 km wide at its narrowest—separates Azerbaijan’s mainland from its western province and also forms Armenia’s direct border with Iran, a crucial lifeline for the historically beleaguered landlocked state. Granting the Azeris a “corridor” here had long been a red line for Yerevan. Mutual distrust remains high after decades of hostile propaganda, and Armenian society is deeply traumatized by the recent war’s displacement, cultural destruction, and fears of a potential annexation of the province by Baku. It is at this juncture that the U.S. steps in as a kind of “neutral” guarantor power for the so-called corridor. Trump Route for Peace and Prosperity In the second, and arguably most important, Washington agreement, the U.S. is granted 99-year exclusive special rights to develop infrastructure in the Syunik/Zangezur region. Through an Armenian-American joint venture, led by a consortium of private companies (including potential third-country partners), the so-called “Trump Route for International Peace and Prosperity” (TRIPP) is to be built. In addition to restoring a disused railway line for passenger and freight traffic, plans include new oil and gas pipelines and fiber-optic cables. Unlike some earlier proposals, the territory itself is not being leased to the U.S.—this is a commercial project in which Armenia retains full sovereign control. However, the use of private American security firms to protect the infrastructure is possible. After the meeting, all three leaders hailed the results as “historic,” and the European Union also voiced strong approval. But while the immediate participants stand to benefit significantly from implementing the deals, the likely losers are in Moscow and Tehran. Yerevan Distances Itself from Moscow Opening borders with long-hostile neighbors offers significant economic potential. Access to the Turkish market in particular could stimulate new growth. Geopolitically, it opens previously closed avenues for diversification; notably, the already ongoing strengthening of ties with the EU and the West could reach a new level. Since autumn 2023, Yerevan has been promoting its “Crossroads of Peace” project, a plan to expand cross-border infrastructure in the South Caucasus, in which the Syunik region is a crucial puzzle piece. The Washington deals also come with American investment commitments—not only in energy and infrastructure but also in fields such as semiconductor production and AI. Germany and the EU have also long pledged investments in Armenia’s transport links and regional connectivity. At the same time, bringing a U.S. presence into such a geostrategically vital chokepoint is a clear affront to both Russia and Iran, historically important partners for Armenia. Until recently, Moscow was considered Armenia’s indispensable security guarantor and still maintains a military presence in the country. Yet since 2023, Yerevan has been openly turning away from Russia. Until early 2025, Russian FSB forces still controlled Armenia’s border crossings to Turkey and Iran—a Soviet-era legacy—but Armenians have since taken over. In July, Pashinyan’s government even claimed to have foiled a Russian-backed coup attempt. At the end of August, Armenia will host joint military exercises with the U.S. for the third time under the name “Eagle Partner.” This is also unwelcome news for Tehran. Despite stark cultural and political differences, the Islamic Republic and Armenia share an interest in keeping trade routes open to Europe and Russia in light of their rivalry with Azerbaijan and Turkey. A U.S. presence right on its doorstep in Syunik would be a security nightmare for Iran and could disrupt this export route. For Yerevan, given Trump’s unpredictability in foreign policy, it is not without risk to damage relations with a friendly neighbor and openly break with Russia. Domestically, Pashinyan faces fierce criticism over the agreement. The opposition accuses him of having completely abandoned the Nagorno-Karabakh issue, failing to secure any prospect of return for the 100,000 displaced Armenians, and not holding Baku accountable for alleged war crimes. Voices from the Syunik region itself fear a sell-out of their land, new political tensions, and economic harm from a collapse in trade and tourism with Iran. Nevertheless, the Armenian Prime Minister hopes to benefit politically from the agreement. In the 2026 parliamentary elections, he aims for re-election, but his approval ratings recently stood at just over ten percent. A breakthrough in the peace process—which he has long declared the top priority of his foreign policy—could give him a vital boost, as the overwhelming majority of Armenians want peace. Baku’s Interests Critics had accused Baku of using a “salami tactic” of making ever-new demands to extract maximum concessions from Pashinyan’s government without genuine interest in a peace treaty—especially if it would bring economic growth and stability to its long-time enemy, and democratic, systemic rival, Armenia. But Azerbaijan’s own economic prospects are also a strong driving force. A direct land link from Azerbaijan’s heartland through Nakhchivan to Turkey offers major potential for trade and energy exports to Europe. At the same time, Aliyev wants to position his country for the post-fossil era as a hub for transit and trade. This requires open borders and international trust. With Pashinyan’s government seen as Baku’s “best chance” to secure a deal quickly and on favorable terms, Aliyev also has an interest in finalizing the agreement soon. For a government that has recently tightened the screws on what remains of a free press and democratic civil society, positioning itself on the world stage as part of a major peace initiative is a welcome image boost. Events like COP-29 (2024) and the Global Media Forum (2025) have already been used by Aliyev to polish his image and sideline human rights issues. Partners like Beijing have little concern for such matters, and Azerbaijan’s location on the “Middle Corridor” is already paying off: trade with China rose 25 percent in the first quarter of 2025. Relations with Moscow, however, have sunk to a new low since the downing of an Azerbaijani passenger plane in December 2024 and further escalations. By signing the Washington deal—paired with the lifting of U.S. arms export restrictions—Baku makes clear that it has finally emancipated itself from its former colonial power, Russia. U.S. Interests For the U.S. President, the “historic peace deals” are partly about business. Businessman Trump sees the opportunity and named as the goal of the route bearing his name “to fully unlock the potential of the South Caucasus region.” An American presence in such a geostrategically important area, right on Iran’s doorstep, is also a significant security move. Even if no state “boots on the ground” are planned to secure the project, joint military exercises are already taking place, and private security companies would still count as a U.S. presence. The new rapprochement between Washington and Baku also fits neatly into broader Middle East dynamics. While Baku’s relations with Tehran fluctuate between occasional cooperation and open rivalry, Azerbaijan is considered Israel’s most important partner among Muslim countries—particularly in security and intelligence cooperation. With Washington now lifting arms export restrictions for Baku, some observers see a possible new trilateral alliance between Washington, Tel Aviv, and Baku against Iran. Not least, the very name “TRIPP” suggests prestige plays a role for the U.S. President. With the “one day” in which Donald Trump said he would end the Russian war in Ukraine now in its eighth month, it suits the self-proclaimed Nobel Peace Prize candidate to claim that his genius has solved a nearly forty-year conflict through infrastructure projects (paid for by others) where the world’s major powers—and most recently Joe Biden—had failed. The White House promptly tweeted a photo after the summit captioned: “THE Peace President.” Europe’s Interests EU representatives and leading member states explicitly welcomed the Washington agreements. Not only German President Steinmeier and EU foreign policy chief Kallas had advocated for a peace treaty during visits to the region earlier this year, but Macron also expressed his support during a summer meeting with Pashinyan. The fact that the Europeans failed to take Washington’s place as guarantors of a peace deal—even though a similar offer involving a Swiss company was reportedly on the table—is as sobering as it is unsurprising. However, given that a qualitatively new U.S. presence could help stabilize this vital region in the EU’s neighborhood, weaken Putin’s war-waging Russia, diversify energy sources, and ultimately channel many of the new trade routes into the European heartland, the EU stands to gain much from the agreement. If the Armenians now get a boost to pursue their European ambitions, this offers an opportunity for greater engagement from Brussels and member states—especially through economic investments that expand the European footprint in the region and reduce Armenia’s painful dependence on Russia in trade and energy. Already Historic? Although Trump’s self-congratulatory statements after the meeting might have led some to believe the peace treaty was already a done deal, there are still hurdles to the final signing. Aliyev emphasized that Pashinyan’s government must first “do its homework,” referring primarily to the politically contentious constitutional amendment in Armenia. The planned “Trump Route” currently exists only on paper. Russia and Iran see their interests in the region directly threatened by the project, and although Russia’s weakness is largely self-inflicted—starting (at the latest) with its 2022 invasion of Ukraine, which has since tied up most of its resources—both countries can be expected to take steps to disrupt or even block TRIPP’s construction. Tehran has already declared it will “turn the project into a grave.” Turkey, by contrast, stands to benefit if it can use the new economic links to expand its role as a regional power in the Caucasus. It will also be interesting to see how the deal might indirectly affect Georgia, an EU candidate country that is rapidly drifting away from the West. The expansion of alternative transport routes could undermine Georgia’s current monopoly on direct overland links between the EU, Azerbaijan, and Central Asia—the overhaul of the key Baku–Tbilisi–Kars railway is nearly complete. The “businessman”-controlled Georgian Dream government might thus become more “receptive” to economic pressure aimed at steering it back toward a democratic, pro-European course. If both agreements—a peace settlement, an open border, and the comprehensive development of planned infrastructure projects in the Syunik region under U.S. patronage—are implemented, the label “historic” would be entirely appropriate, with significance far beyond the region. Economically, it would make an important contribution to boosting connectivity between Europe and Central and East Asia via the “Middle Corridor” and the Caspian Sea. [1] The official name of the Armenian province is Syunik. The term Zangezur, on the other hand, is mainly used by Azerbaijan and Turkey and refers to a historical region that extends beyond the present-day province of Syunik.

Diplomacy
Trump, Putin Alaska Arrival (9260680)

Why Peace in Ukraine Remains Elusive

by Nicholas Morieson , Ihsan Yilmaz

Donald Trump declared his Alaska summit with Vladimir Putin a success, despite contrasting evidence suggesting otherwise. On Truth Social, he said a peace agreement over Ukraine, not a mere ceasefire, was the right path, claims he echoed during follow-up talks in Washington with Volodymyr Zelensky and European leaders. “Potentially, millions of people’s lives will be saved,” Trump said. That optimism looks misplaced. For Putin, Ukraine is not merely a bargaining chip but a territory he views as part of a Russian “civilization-state.” When he meets with Western leaders, he is not negotiating over land; he frames the war as a defense of Russian civilization and its values. As a result, Putin cannot easily “make a deal” involving land swaps to end the conflict.  Russia’s civilisational project  In addition to civilisational rhetoric, other factors contribute to Putin’s intransigence. Strategic concerns about NATO, fears for regime security, and the material importance of Crimea and the Black Sea all shape Moscow’s stance. Yet the language of civilisation turns these into matters of identity and survival. It fuses practical interests with existential claims, making retreat even harder. Even if compromises were possible on security or economics, the civilisational frame casts them as betrayals of Russia’s destiny.  Some American policymakers have tended to read Russia as a state with interests that can be traded. However, Putin accounts for Russia not simply as a nation-state, but as a civilization rooted in Orthodoxy, empire, and the memory of Soviet power. Viewed through this prism, Ukraine is not a foreign neighbour, but an inseparable part of Russian history and identity, which must be defended against Western encroachment.  In his 2021 essay On the Historical Unity of Russians and Ukrainians, Putin claimed that Russians and Ukrainians are “one people,” and that Ukraine is “an inalienable part of our own history, culture, and spiritual space.” Whatever his private convictions, the function of this language is clear. It justifies annexation and occupation, and it raises the political cost of retreat by treating territorial issues as matters of civilisational survival.   Putin himself insists that “the West” does not understand that “the Ukraine crisis is not a territorial conflict … and not an attempt to establish regional geopolitical balance.” Instead, he says, it is rooted in “the principles underlying the new international order” he is building. Peace, in this new order, is possible only “when everyone feels safe and secure, understands that their opinions are respected” and when “no one can unilaterally force …others to live or behave as a hegemon pleases even when it contradicts the sovereignty …traditions, or customs of peoples and countries.”    This framing lets the Kremlin portray the West as the aggressor imposing alien norms on unwilling Ukrainians. Russia, by contrast, is said to be fighting for itself on behalf of all nations who wish to see western hegemony end and the birth of a new multipolar world. Moreover, it portrays Ukraine’s status as a civilisational question tied to identity and resistance to Western liberal norms. As a result, only a settlement that Putin present domestically as recognition of Russia’s civilisational standing is acceptable, which complicates compromise beyond what standard diplomatic formulas suggest.  Challenges to Trump’s pursuit of peace  Trump has made no secret of his desire to be remembered as a peacemaker. However, he also admires strong leaders and has shown sympathy for post-liberal arguments that liberal democracy is exhausted. These affinities bring him closer, at least rhetorically, to elements of Putin’s stance.  Admiration and aspiration alone are insufficient in bridging the gap between Putin and Trump’s positions on Ukraine’s independence. Putin frames the conflict as existential, defending Russian civilisation against Western encroachment. This  makes compromise especially difficult. If the war is understood in these terms, how can Moscow return occupied territories without undermining its own civilisational claim? How can it accept a Ukraine that leans towards the European Union, or tolerate an American presence on its soil?  Trump may want peace, but Putin has tied his legitimacy to a narrative that resists it. Unless that framing is abandoned, or radically reinterpreted, any settlement will remain elusive.  A wider trend  “Russia’s approach is part of a wider pattern in which civilisational claims have become central to how leaders justify power and resist compromise. Xi Jinping frames China as a five-thousand-year-old civilisation whose territory includes Taiwan and the South China Sea. He presents the Communist Party as the guardian of a civilisational tradition stretching back to Confucius, giving contemporary disputes an aura of timeless legitimacy. Narendra Modi portrays India as an ancient Hindu civilisation restoring its rightful place after centuries of foreign domination. Each case is distinct, but the message is similar: our civilisation is exceptional, our sovereignty absolute, and our values not up for negotiation.    A troubled summit  Against this backdrop, the Alaska meeting was never likely to produce more than gestures. Trump may genuinely want peace and to be remembered as the leader who ended the war. Yet he is dealing with a counterpart who has justified the invasion of Ukraine in civilisational and existential terms. For Putin, Ukraine is not only territory but a symbol of Russia’s identity and sovereignty, cast as a bulwark against Western encroachment. Within this frame, Russia would view restoring Ukraine’s borders, accepting its European orientation, or tolerating a long-term American presence in the region as defeats of principle rather than concessions of interest.  Trump’s ambition to end the war faces an almost insoluble dilemma. Europe will reject a settlement that rewards aggression, while Putin refuses to surrender territory he has cast as integral to Russian civilisation. Land swaps seem practical but please neither side. If the conflict were to remains frozen, Ukraine will be fractured and the deeper issues unresolved. Peace demands compromise, but compromise undermines the very narratives on which Moscow has built its legitimacy. As a result, unless Putin retreats from his civilisational framing of the war, any settlement will remain elusive and Ukraine’s future uncertain.  Dr Nicholas Morieson is a Research Fellow at the Deakin Institute for Citizenship and Globalisation, Deakin University, Melbourne. He is the author of three books, including Weaponizing Civilizationalism for Authoritarianism: How Turkey, India, Russia, and China Challenge Liberal Democracy (Palgrave 2025).  This article is published under a Creative Commons License and may be republished with attribution.

Defense & Security
LNG plant based on gravity type with a gas carrier. The Arctic LNG-2 project. Utrennoye deposit, Yamalo-Nenets Autonomous Region, Russia. 3d rendering

Securing the ‘great white shield’? Climate change, Arctic security and the geopolitics of solar geoengineering

by Nikolaj Kornbech , Olaf Corry , Duncan McLaren

Abstract The Arctic has been identified by scientists as a relatively promising venue for controversial ‘solar geoengineering’ – technical schemes to reflect more sunlight to counteract global warming. Yet contemporary regional security dynamics and the relative (in)significance of climate concerns among the key Arctic states suggest a different conclusion. By systematically juxtaposing recently published schemes for Arctic geoengineering with Arctic security strategies published by the littoral Arctic states and China, we reveal and detail two conflicting security imaginaries. Geoengineering schemes scientifically securitise (and seek to maintain) the Arctic’s ‘great white shield’ to protect ‘global’ humanity against climate tipping points and invoke a past era of Arctic ‘exceptionality’ to suggest greater political feasibility for research interventions here. Meanwhile, state security imaginaries understand the contemporary Arctic as an increasingly contested region of considerable geopolitical peril and economic opportunity as temperatures rise. Alongside the entangled history of science with geopolitics in the region, this suggests that geoengineering schemes in the Arctic are unlikely to follow scientific visions, and unless co-opted into competitive, extractivist state security imaginaries, may prove entirely infeasible. Moreover, if the Arctic is the ‘best-case’ for geoengineering politics, this places a huge question mark over the feasibility of other, more global prospects. Introduction ‘The Arctic region plays a key role in the global climate system acting as a carbon sink and a virtual mirror’ (Carnegie Climate Governance Initiative (C2G), 2021: 1) – thus reads a typical introduction to the rationale for solar geoengineering (SG) in the Arctic. To most, SG – any large-scale intervention that seeks to counteract anthropogenic global warming by reflecting sunlight – is still an obscure idea. However, it is quickly gaining traction among some groups of climate scientists, entrepreneurs and even some governments as climate impacts provoke an ever-increasing sense of alarm and urgency. Debates concerning potential governance of SG routinely acknowledge its potential international governance challenges, but have tended to leave security dimensions mostly unexamined (but see Nightingale and Cairns, 2014), usually by framing the challenge primarily in terms of coordinating efforts and dealing with potentially unwanted side effects (Corry et al., forthcoming). While climate change itself is often understood as a potential security threat, it has not yet motivated exceptional or decisive state action, but rather seems to produce a series of routine practices through which ‘climate change is rendered governable as an issue of human security’ (Oels, 2012: 201). Geoengineering could potentially change this situation. The potentially high-leverage, transboundary nature of large-scale SG has led to suggestions that it would involve disagreements over the methods and intensity of interventions (Ricke et al., 2013) and could lead to international conflicts, not least from uni- or ‘mini’-lateral deployment (Lockyer and Symons, 2019). In addition, with its potential to make climatic changes and catastrophes attributable to (or able to be blamed on) the direct and intentional actions of states, SG could also make the rest of climate politics a more conflictual field (Corry, 2017b). Other scholars have examined geoengineering itself through a human security frame – recently developed as ‘ecological security’ with ecosystems as the main referent object (McDonald, 2023), where the insecurity arising from climate change is seen to go beyond the particularity of state interests. This casts geoengineering as a potential ecological security measure, or even as a potentially ‘just’ one, if it would protect groups otherwise vulnerable to climate threats (Floyd, 2023). However, the entanglement of geoengineering, even if framed as an ‘ecological security’ measure, with national and international security dynamics, would remain a distinct risk, in similar ways to how humanitarian aid and development have become entangled with, and for some historically inseparable from, security (Duffield, 2007). In this article, we seek to move beyond theoretical speculation about the International Relations of geoengineering abstracted from historical or regional security dynamics, using a case study of the Arctic to investigate how geoengineering might (not) enter this political space and to derive conclusions of broader relevance to the international debate. We make use of the empirical richness revealed by schemes for Arctic geoengineering to identify how security imaginaries – ‘map[s] of social space’ (Pretorius, 2008: 112) reflecting common understandings and expectations about security – are already implicit in scientific and technical visions of geoengineering. We contrast these scientific security imaginaries with current state security imaginaries that play a dominant role in the anticipation of Arctic futures more generally. As we will show, scientific security imaginaries consider the Arctic as a best case for geoengineering in terms of political feasibility. This allows for analytical inference based on critical case selection (Flyvbjerg, 2006): if even in the Arctic these scientific security imaginaries have little compatibility with current state security imaginaries, geoengineering faces major obstacles of political feasibility in other regions and globally, unless deployed in pursuit of security rather than global environmental protection. Many different ideas for SG have been explored as ways to cool the Arctic. These include marine cloud brightening (MCB): spraying salts from sea vessels to make marine clouds more reflective (Latham et al., 2014) or covering ocean or ice surfaces with reflective materials (Field et al., 2018). Related ideas involve using wind power to pump water onto ice to help thicken it (Desch et al., 2017), underwater ‘curtains’ to protect ice from warmer water streams (Moore et al., 2018) or reintroducing large animals to graze and trample so that dark boreal forest is replaced by reflective snow-cover, protecting permafrost (Beer et al., 2020).1 The technique of stratospheric aerosol injection (SAI) – spraying reflective aerosols like sulphur or calcite into the stratosphere – is also included as an option by some organisations working with Arctic geoengineering2 or explored in simulations or other research (Jackson et al., 2015; Lane et al., 2007; Robock et al., 2008). In practice, however, aerosols distributed in or near the Arctic would likely spread over much of the Northern hemisphere, and model studies of Arctic-targeted SAI generally conclude that is it not a desirable option due to particularly severe negative side effects outside the Arctic (Duffey et al., 2023). While geoengineering scientists seek to distance their work from geopolitical concerns (Svensson and Pasgaard, 2019), scientific research in the Arctic – even that involving cooperation between Cold War adversaries – has long been deeply entangled with state security objectives and military interests (Doel et al., 2014; Goossen, 2020). Similarly, weather modification schemes have a history of (largely failed) entanglement with military purposes (Fleming, 2010), while climate modelling evolved partly through and with military scenario-making (Edwards, 2010). Climate modelling occupies a more civilian location in multilateral institutions now but still shares its particular way of seeing the climate – as a space of geophysical flows – with a military gaze (Allan, 2017). More importantly, the interrelated environmental, economic and geopolitical interests in opening up the Arctic that are emerging with global warming make for a particular set of contradictions and tensions in the region that we argue will be much more likely than global environmental concerns to determine what role (if any) geoengineering could or would play. Arctic SG ideas are emerging largely oblivious to this context, which is understandable, but makes for an interesting comparative analysis that, as will we show, raises questions concerning the overall feasibility of SG in the Arctic, especially deployment of it in line with scientific imaginaries. Since scientific literature tends to be central to governance-oriented assessments of SG (e.g. National Academies of Sciences, Engineering, and Medicine, 2021), a mismatch between assumptions has potentially serious policy implications, not least in terms of overall feasibility, which in turn augments risks of such schemes failing and contributing to mitigation deterrence (when they were hoped or planned for, delaying emissions reductions (McLaren, 2016)). Attention to the geopolitical complexities of Arctic geoengineering could prevent scientific work being translated into policy prescriptions in unintended ways or having unexpected effects – if the complexities can be foregrounded when interpreting such work and be considered in designing future research. Approach We analyse both Arctic geoengineering schemes and state strategies for the Arctic as security imaginaries. This concept draws on Charles Taylor’s (2004) notion of the social imaginary, ‘the ways people imagine their social existence, how they fit together with others, how things go on between them and their fellows, the expectations that are normally met, and the deeper normative notions and images that underlie these expectations’ (p. 23). Imaginaries, in this sense, are worldviews – sets of assumptions that may or may not correspond to social reality but affect it in significant and material ways. They are not simply subjective constructions to be weighed against some objective reality, but (often competing) ways of constructing and institutionalising the world. Following Pretorius (2008), a security imaginary is then ‘that part of the social imaginary as “a map of social space” that is specific to society’s common understanding and expectations about security and makes practices related to security possible’ (p. 112). Regrettably, social imaginaries are often theorised through ‘internalism’: as if a society is determined by factors originating within that society alone (Rosenberg, 2016).3 This makes it difficult to explain why different societies often have similar security imaginaries. By breaking with internalism, national imaginaries can be understood as inherently international in the sense that they are deeply affected by coexistence with other societies. For Pretorius (2008), ‘the security imaginary is . . . open to influence from perceptions, beliefs and understandings of other societies about security’ due to ‘trans-societal exchanges’ such as travel (p. 112). But in a deeper way, the mere existence of multiple societies is fundamental to the whole idea of (national) security (Rosenberg, 2016). In addition, if the Arctic is considered a ‘regional security complex’ (Lanteigne, 2016) such that the security imaginary of societies in a region ‘cannot be reasonably analysed or resolved independently of each other’ (Buzan and Wæver, 2003: 44), then relations between societies become constitutive, even, of security imaginaries of that region. Scientific communities – in this case geoengineering researchers – can produce a different ‘map of social space’ from national ones, since the groups (in one version ‘epistemic communities’ (Haas, 1992)) producing these are not necessarily national, and use different tools and concepts than national security communities. At the same time, scientists are rarely unaffected by their backgrounds, and their technical and conceptual tools for producing such a ‘map’ reflect traces from state priorities and international structures, including colonial legacies (Mahony and Hulme, 2018). State and scientific security imaginaries are thus distinct but not separate, and as we shall see, they can clash or draw upon each other, often implicitly. The security imaginary concept captures three important characteristics of our empirical materials. First, geoengineering ideas and state security strategies are performative (rather than purely descriptive) in their anticipation of (Arctic) futures (Anderson, 2010). Second, they are based on understandings of social order which merge factual and normative claims – what is and what should be (Taylor, 2004). Third, they construct threats and necessary responses in terms of the security of that social order, irrespective of whether those threats are of a military nature or otherwise (e.g. a climatic threat); in other words, they can securitise a variety of referent objects (Buzan et al., 1998). In investigating scientific and state security imaginaries, we focus on the difference in the construction of two objects: climate and the international order. We ask: how is the ‘Arctic climate’ articulated and made legible in relation to the planetary climate and other factors, and further, how is the Arctic climate problematised and related to concerns of desirable or undesirable futures? What political, economic and international infrastructures are presumed? In sum, what threatens and what defends Arctic and international order? To explore the security imaginaries of Arctic geoengineering, we gathered materials that construct Arctic futures through searches in the peer-reviewed literature with the search terms ‘Arctic’ and ‘geoengineering’ using , as well as search hits on the term ‘Arctic’ in the archive of the Climate Engineering Newsletter run by the Kiel Earth Institute,4 which also covers grey literature and press coverage on the topic.5 We manually excluded texts exclusively focused on carbon removal forms of geoengineering, except those with positive effects on the surface albedo. For the state security imaginaries of the Arctic, we consulted policy documents and other official government publications looking for the most recent policy statement in each of the littoral states: Canada, the United States, Russia, Norway and Denmark (which controls the security and foreign policy of Greenland) concerning their respective Arctic security strategy.6 Public documents are often used as data in security studies as testaments to state preferences or intentions, despite the often performative character of such documents. Such documents generally attempt to portray the institutions that produce them as competent and coherent – and of value to particular external audiences. As such they are potentially unreliable as sources for underlying intentions, levels of capacity and commitment behind policy goals. However, as documents set out to perform a future which is seen as desirable – either by the authors themselves or the audiences they appeal to – they are a useful guide to the underlying assumptions of social and international order guiding Arctic security politics – the state security imaginaries, in other words. We therefore study them for their performative content, with particular emphasis on the intended audiences and messages (Coffey, 2014). Similarly, geoengineering publications also perform a material and political Arctic future to advance scientific or research agendas, and we therefore analyse the underlying imaginary of their desired futures, without prejudice to the climatological or technical feasibility of the envisioned schemes. However, as the imaginaries of many researchers typically invoke global benefits from Arctic geoengineering, in particular through preventing tipping events, it bears mentioning that recent literature questions these benefits. Research indicates that that some techniques (ice restoration in particular) would have limited impacts on the global climate (Van Wijngaarden et al., 2024; Webster and Warren, 2022; Zampieri and Goessling, 2019), and a recent comprehensive review finds only limited support for the claim that Arctic sea ice is a tipping element in the climate system (Lenton et al., 2023: 58–60, 66–68). Even so, it should not be assumed that scientific considerations alone will drive decisions to geoengineer the Arctic, and the growing interest in these ideas makes it important to examine their political imaginaries. Finally, we must acknowledge the highly consequential difference in the power to securitise between the actors which produce the imaginaries. The state apparatuses producing the state security imaginaries are more aligned with, and therefore more likely to influence, actors with the power to securitise (Floyd, 2021). We read both sets of imaginaries in this light. The ‘great white shield’: scientific security imaginaries In geoengineering studies and policy papers, the Arctic is foremost understood as a part of the global climate system (Corry, 2017a), with focus placed on potential tipping points in terms of alarming above-average warming, the sea ice albedo feedback and the potential release of methane and carbon dioxide from thawing permafrost or undersea clathrates. These may push the Earth into feedback cycles of further warming. The Arctic is therefore seen as a ‘great white shield’ for the global climate, but a fragile one: ‘the weakest link in the chain of climate protection’ (Zaelke, 2019: 241). Many of those advocating exploration of Arctic geoengineering argue that emissions cannot be reduced in time to prevent tipping points. One paper contends that cryospheric tipping points ‘are essentially too late to address by standard political processes [for climate management]’ (Moore et al., 2021: 109). This pessimistic assessment spawns a complementary opposite: hopes that geoengineering might prove especially feasible and desirable in the Arctic, with associated aspirations for near-term experimentation and potential deployment. One researcher coined the term ‘Arctic Premium’, arguing that the particular climatic characteristics of the region will enable ‘a dividend for regionally based climate interventions that could be less expensive, more effective and achieve faster results than if they were targeted over the whole earth’ (Littlemore, 2021: 2) – the Arctic imagined as an effective and relatively accessible lever for operating on the global climate system as a whole.7 While regional benefits such as the preservation of ice-dependent Indigenous ways of life are sometimes mentioned (Moore et al., 2021: 110), this tends to occur when regional benefits align with what are understood as global climatic interests. This instrumental attitude can also be seen in proposals that, echoing some of the early literature on SG (Lane et al., 2007; Robock et al., 2008), see the Arctic as a testing ground. These include ‘SCoPEx’, which would have tested SAI equipment over Indigenous Sámi land, and the suggested use of the Sermeq Kujalleq glacier in Greenland – Inuit territory – as a prototype for more substantial glacial geoengineering in the Antarctic. The Sermeq Kujalleq proposal is justified on the basis of ‘fewer global environmental impacts’, despite the considerable amount of local socio-environmental impacts and acknowledgement that ‘the reactions of local people would be mixed’ (Moore et al., 2018: 304). In a quote that sums up the assessment of most researchers Bodansky and Hunt (2020) argue that ‘as bad as Arctic melting is for the Arctic itself, its global effects are more concerning’ (p. 601). The concern with global effects infuses scientific security imaginaries with urgency. The ostensible ‘speed’ (Zaelke, 2019: 244) of SG is contrasted with the slowness of politics, emissions reductions and large-scale carbon removal.8 In many cases, such invocations of urgency lead to claims that geoengineering is necessary: that ‘excluding polar ice restoration could make the 1.5° C goal impossible to achieve’ (Field et al., 2018: 883) or that ‘more and more people see geoengineering as a necessity more than an option, making it a matter of when rather than if’ (Barclay, 2021: 4). One proposal notes that ‘these are expensive propositions, but within the means of governments to carry out on a scale comparable to the Manhattan Project’ (Desch et al., 2017: 121); others also specify funding by rich states as the way to move forward on research and deployment (Moore et al., 2021). The urgent threat of Arctic climate change is seen as a job for decisive state action, and thus, it is argued to be salient in so far as it appears as a universal threat to state interests. At the same time, the causes of climate change are downplayed and depoliticised across the literature. Attributing climate change to emissions from ‘human societies’ (Beer et al., 2020: 1), the literature frames out the vastly unequal responsibility for climate change and the social and economic dynamics driving historical and continued emissions.9 One policy paper neglects social causes of climate change altogether, contrasting geoengineering only to ‘conventional mitigation policies’ (Bodansky and Hunt, 2020: 597) and ‘decarbonisation of the global economy’ (p. 616). In this way, Arctic climate change is constructed as a global security threat, seen as stemming from the ‘tight couplings within global systems, processes, and networks’ (Miller, 2015: 278) rather than the actions of any specific group of humans, and as a threat to global ‘human security’ and therefore not subject to the division and distrust of international politics. In this, the imaginary resembles much liberal environmentalism in International Relations, characterised by a ‘global cosmopolitanism’ which does not seriously engage with inequalities of power and intersocietal difference (Chandler et al., 2018: 200). This imaginary is probably adopted to construct scenarios for technical research, since it fits neatly with modelling tools that produce visions of geoengineering in purely technical Earth system terms. But the liberal imaginary also shapes assessments of political feasibility and could impinge on the technical design of geoengineering schemes, including in ways that can be hard to unpick when the research enters the political sphere. Most publications entirely omit considerations of state security, including some papers that focus on governance (Bodansky and Hunt, 2020; Moore et al., 2021). The mentions of security that do exist are brief and vague: C2G (2021) notes that ‘evidence suggests potential security issues may arise’ (p. 2) in the case of SAI. Another paper notes as an example of ‘geo-political . . . friction’ that ‘Arctic regions such as Russia, Alaska and the Canadian Yukon would be providing a global public good . . . which would add a major new dimension to international relations’ (Macias-Fauria et al., 2020: 10), suggesting that geoengineering can be adequately grasped through rationalist decision frameworks where global public goods offer non-rival and universal benefits, which is disputed (Gardiner, 2013). In the research, the omission of geopolitics is justified by relegating it as a problem which only concerns the ostensibly more controversial techniques such as SAI deployed globally. There is a hope that ‘Arctic interventions pose less of a governance challenge than global climate interventions’ (Bodansky and Hunt, 2020: 609). This rests on the twin claim that the physical effects of Arctic interventions will be more limited and therefore less risky and that the Arctic’s political environment is more conducive to geoengineering than the ‘global’ polity as a whole. In terms of physical effects, many Arctic interventions are argued to be ‘low-risk’ (Barclay, 2021: 4) due to fewer and less severe environmental side effects. What Zaelke (2019) calls ‘soft geoengineering’ (p. 243) approaches are presented as ‘more natural’ (Littlemore, 2021: 2) than the most commonly considered SG techniques such as SAI or MCB which involve physical and chemical manipulation of the atmosphere.10 In particular, efforts to restore sea ice without atmospheric interventions are promoted highlighting the ostensibly more ‘natural’ character of their intervention (Field et al., 2018: 899). ‘Unlike other [SG] methods, thickening sea ice is attractive because it merely enhances a naturally ongoing process in the Arctic’, claims one proponent (Desch et al., 2017: 112). Efforts at ecological intervention in ecosystems to halt permafrost thaw are also described as ‘a return to a more “natural state”’ (Moore et al., 2021: 111). ‘Soft’ geoengineering concepts are in many cases linked to discourses of conservation, with the sometimes-explicit expectation that this will make them more benign and less politically controversial: ‘Since it is rooted in the preservation of the existing state rather than introducing new and undeniably controversial elements into the atmosphere, it likely presents easier governance challenges’ (Moore et al., 2021: 116). Such distinctions between ‘natural’ and ‘unnatural’ interventions may well facilitate cooperation around some methods, but notions of ‘natural’ are also situated, making distinctions inevitably difficult to maintain in practice. While aiming to preserve select parts of the Arctic environment (such as land ice, sea ice or permafrost), geoengineering interventions will likely also introduce significant changes and risks to Arctic ecosystems (Miller et al., 2020; Van Wijngaarden et al., 2024).11 In this way, ostensibly ‘natural’ Arctic interventions would lead to unprecedented anthropogenic – and for others therefore ‘unnatural’ – impacts on ecosystems in the Arctic and possibly beyond, since remote impacts are plausible but not yet well understood.12 This reveals an imaginary prevalent among proponents of Arctic geoengineering, where a distinct construction of ‘natural’ emerges to bridge aspirations of technical manipulation of the climate with what scientists see as palatable to (or believe to be) social ideals of ‘nature’. In addition, the adjectives used to describe ‘soft’ geoengineering – ‘targeted’ (Moore et al., 2021: 108), ‘localized’ (Latham et al., 2014: 3), ‘reversible’ (Barclay, 2021: 4) and ‘intelligent’ (Field et al., 2018: 900), all point to an imaginary where aspirations towards the ‘natural’ are combined with expectations of fine-grained, scientifically calibrated control. As Zaelke (2019) explicitly suggests, ‘in other words, we have control over soft geoengineering’ (p. 243) – the ‘we’ here left ambiguous. The idea of having a relatively large degree of control originates in restraint vis-a-vis ‘global’ SG, in that it recognises large risks from attempting to control the global climate system as such. But this sense of fine-grained control may also encourage more Promethean dreams of a ‘designer climate’ (Oomen, 2021), as speculation over future possibilities of ‘fine-tun[ing] the flows of heat, air and water’ using localised MCB indicates (Latham et al., 2014: 10). In terms of the Arctic’s political environment, discourse on the feasibility of geoengineering reveals further elements of a liberal imaginary, relying on (existing or imagined) international law and institutions, distributive justice and consequentialist ethics (Baiman, 2021; Barclay, 2021), a focus on cost minimisation (Desch et al., 2017; Field et al., 2018) and market-based approaches such as payments for ecological services (Moore et al., 2021) or carbon credits (Macias-Fauria et al., 2020) in the implementation of geoengineering schemes. Taken together, such measures rather well resemble a ‘liberal cosmopolitan framework through the advocacy of managerialism rather than transformation; the top-down coercive approach of international law; and use of abstract modernist political categories’ (Chandler et al., 2018: 190). Distributive notions of justice and consequentialist ethics are arguably also at the root of claims that local populations in the Arctic, including its Indigenous peoples, may be uniquely receptive to geoengineering schemes. While many advocate public engagement (Desch et al., 2017; Macias-Fauria et al., 2020) and stress that ‘Northern people who use and depend upon the existing landscape need a strong voice’ (Littlemore, 2021: 3), there is a general expectation that such engagement will not be prohibitively conflictual. One policy scholar suggested that ‘given that Northern people are already seeing the effects of climate change, the North may be a place for a more pragmatic, constructive, and legitimate deliberative discussion on Arctic interventions’ (Ted Parson, quoted in Littlemore, 2021: 5). Other researchers have concluded that using SAI would conserve ‘indigenous habits and lifestyles’ in the Arctic (Chen et al., 2020: 1) as a direct consequence of reducing permafrost thaw. These assumptions were strained by the SCoPEx controversy, where the Sámi Council strongly opposed the experiment planned in their territory (Cooper, 2023). Equally, Arctic populations (Indigenous and non-Indigenous) have varied interests that cannot be assumed to be oriented to preventing or reversing Arctic climatic change, some seeing new opportunities for economic development and potentially political independence in the case of Greenland (Jacobsen, 2020). Political feasibility of geoengineering plans is often assessed through legal analyses that weigh up specific techniques and target environments in relation to existing treaties and other legal regimes (Barclay, 2021; Bodansky and Hunt, 2020). Some place hope in techniques such as permafrost/glacier preservation that may be deployed within the bounds of a single nation’s territory, which would, in their view, sidestep the need for international governance altogether: ‘for example, Russian and Canadian policies could change the carbon released from thawing permafrost. Similarly, Greenland’s ice sheet would be the primary responsibility of the Greenlanders’ (Moore et al., 2021: 109). While such techniques might be localised in effect, and only intended to slow climate feedback effects such as the rate of ice loss, inclusion of such measures in market credit schemes, as attempted by the Real Ice project,13 could prove controversial and under some conditions undermine any SG-based climate effect (Fearnehough et al., 2020: Chapter 3). For cross-border geoengineering schemes, the Arctic Council14 is in some cases highlighted as a favourable site for governance (Desch et al., 2017). One paper calls it an ‘obvious institution’ for international governance of Arctic geoengineering in general, contending that ‘because of its relatively small size, the Arctic Council has been a relatively effective forum to develop regional policies relating to the Arctic’ (Bodansky and Hunt, 2020: 610). However, in a later article, one of the authors described the Arctic Council as ‘an informal institution that lacks any regulatory powers and shows no signs of being up to the task of taking significant action’ on Arctic climate change (Bodansky and Pomerance, 2021: 2). Moore et al. (2021) similarly contend that ‘the Arctic Council is not a true international organization with rule-making power’ (p. 113). Yet Moore et al. (2021) still argue the Arctic is a politically tractable space for geoengineering due to the low number of states that would need to come to an agreement – in contrast to global SG which ‘would ideally need at least near-global consensus’ (p. 109). This reveals an important complexity in the concept of globality that permeates the geoengineering imaginaries. While the Arctic, as we showed above, is instrumentalised for a global community – operated on to mitigate climatic effects across the planet – it is also differentiated from ‘global interventions’ that take the global Earth system as their direct object of intervention (Bodansky and Hunt, 2020: 597). As Moore et al. (2021) state explicitly, ‘targeted geoengineering is done on regional scales but aims to conserve the various parts of the global climate and earth system’ (p. 109). The politically salient objects are imagined to be the methods of intervention, spatially bounded in the Arctic region while the intended global climatic effects are in effect rendered unproblematic and therefore without need for governance. Arguably this reflects a common assumption that governance is only relevant in the case of ‘adverse or unintended effects’ (Barclay, 2021: 5) – the intended effect of albedo modification implicitly understood as an unambiguous global public good. On a technical level, this assumption is questionable – since remote consequences of Arctic geoengineering are not yet well understood. But more crucially, the assumption projects exactly those liberal rationalist norms which are argued to be especially present in the Arctic on to the wider geopolitical context. The specific imaginary constructed to justify regional geoengineering interventions as politically feasible while still being part of a global solution to climate change cannot work without a general liberal imaginary of international politics. Otherwise, the global effects of regional interventions would threaten to undo the validity of the ‘regional feasibility’ argument. Arctic state security imaginaries The history of scientific research in the Arctic reveals the liberal security imaginaries underlying Arctic geoengineering to be a relatively recent phenomenon. Doel et al. (2014) describe the intertwinement of 20th-century Arctic research projects and three broad state goals, shared to varying degrees by all littoral states: national security, exploitation of natural resources and extension of territorial sovereignty to disputed areas. When intercontinental and submarine-launched ballistic nuclear missiles were introduced from the late 1950s, the Arctic became a ‘buffer zone’ between the Cold War powers, experiencing a continuous period with low military activity and absence of conflict that likely paved a way for increased cooperation after the Cold War, with Mikhail Gorbachev famously declaring the Arctic a ‘zone of peace’ (Gjørv and Hodgson, 2019: 2). The Arctic came to be seen as an ‘exceptional’ region in the post-Cold War period, where institutionalised multilateral cooperation on regional issues, particularly environmental and scientific activities, could blossom (Lackenbauer and Dean, 2020). In this section, we examine recent state strategies and developments in the Arctic to assess the contours of the current leading security imaginary among Arctic states. The key characteristic of Arctic exceptionalism is that geopolitical conflicts and tensions from outside the Arctic are excluded from affecting cooperation on internal Arctic issues and that, as a corollary, specifically ‘Arctic issues’ are compartmentalised: ‘Actors . . . can talk about everything except contentious issues, not least military security’ (Gjørv and Hodgson, 2019: 3, original emphasis). However, this compartmentalisation is hard to find in recent state assessments. The US emphasised in 2019 that ‘The Arctic remains vulnerable to “strategic spillover” from tensions, competition, or conflict arising in these other regions’ (United States Department of Defense (USDOD), 2019: 6). In 2020, the Danish Minister for Foreign Affairs spoke of ‘a new security-political dynamic in the region. Disagreements and conflicts originating in other areas of the world are also being expressed in the Arctic’ (Kofod, 2020: 1).15 For the four North Atlantic Treaty Organization (NATO) members in the Arctic littoral, such concerns were obviously directed at the only non-NATO state: Russia (even before the invasion of Ukraine). Denmark expressed concern over ‘the Russian build-up of military capabilities’ (Kofod, 2020: 2); Norway stated that ‘Russian build-up of forces and military modernisation can challenge the security of Norway and allied countries directly’ (Royal Ministry of Foreign Affairs (RMFA), 2020: 23) and cited the Russian annexation of Crimea as a key moment in increased tensions and deteriorating optimism regarding peaceful cooperation in the Arctic (RMFA, 2020: 10). Russia, for its part, described ‘military buildup by foreign states in the Arctic and an increase of the potential for conflict in the region’ as a ‘challenge’ (Office of the President of the Russian Federation (OPRF), 2020: 5). Among the NATO states, these assessments have for several years been accompanied by a call for deeper military cooperation. Denmark has pledged to ‘support NATO’s role in the Arctic and the North Atlantic’ (Ministry of Foreign Affairs of Denmark, 2022: 23), a change from previous strategy documents which stressed that ‘enforcement of the realm’s sovereignty is fundamentally the responsibility of the realm’s authorities’ (Ministry of Foreign Affairs of Denmark, Greenland and the Faroe Islands, 2011: 20). Canada aims to ‘increase surveillance and monitoring of the broader Arctic region’ in collaboration with the United States, Denmark and Norway (Government of Canada, 2019: 77), while Norway in 2021 negotiated a deal with the United States to allow it access to two Arctic military installations – the Ramsund Naval Base and the Evenes Airfield. Trust has only deteriorated further since Russia’s full-scale invasion of Ukraine in 2022. All Arctic Council member states except Russia announced they would suspend participation in council meetings because of the invasion, subsequently announcing a ‘limited resumption’ of projects without Russian participation (Global Affairs Canada, 2022). The recent US Arctic strategy describes ‘increasing strategic competition in the Arctic . . . exacerbated by Russia’s unprovoked war in Ukraine’ (The White House, 2022: 3) and claimed that ‘Russia’s war of aggression against Ukraine has rendered government-to-government cooperation with Russia in the Arctic virtually impossible at present’ (The White House, 2022: 14). Russia interprets Arctic politics on similar terms; the Arctic ambassador has stated that the Finnish and Swedish bids to join NATO ‘will of course lead to certain adjustments in the development of high altitude [sic] cooperation’ (quoted in Staalesen, 2022). This dynamic of de-exceptionalisation, where the Arctic is increasingly reintegrated into great power politics, is the contemporary context in which the littoral states interpret the region’s present and future climatic changes. The state goals associated with early and mid-20th century Arctic science are reappearing as a background for envisioning the impact of climate change. Of the three goals identified by Doel et al. (2014), assertion over disputed territories is arguably of lesser importance today. All states have indicated a willingness to settle territorial continental shelf disputes via international law, and such statements are generally accepted by commentators as genuine (Østhagen, 2018). But the goals of military national security and extraction of natural resources are growing in salience, and changing in character, as the ice melts and the permafrost thaws. In contrast to the geoengineering literature, climate change is rarely addressed as a primary threat in state policies but described in more restricted terms. Adaptation problems from ‘sea-ice loss, permafrost thaw and land erosion’ (Government of Canada, 2019: 63) are emphasised, and both Canada (Government of Canada, 2019: 18) and Norway (RMFA, 2020: 14) describe climate change as a cultural threat to Indigenous peoples. Nonetheless, the task of emission reductions does not figure as a specifically Arctic objective (e.g. RMFA, 2020: 14). In this way, climate change figures less as a problem that must urgently be dealt with and more as an unavoidable condition of Arctic politics. In the context of military security objectives, climate change is understood primarily as a driver of increased navigability and accessibility of the Arctic. The US Navy anticipates an increasingly ice-free ‘blue Arctic’, where ‘peace and prosperity will be increasingly challenged by Russia and China, whose interests and values differ dramatically from ours’ (United States Department of the Navy, 2021: 2). Cold War-era interpretations of the Arctic’s geographical significance are being reinvigorated: Canada stresses the importance of maintaining air and missile capabilities in its Arctic region due to its location along the shortest path from Russian to US territory (Government of Canada, 2019: 77). And as the region becomes more accessible, it rises in strategic importance. The US Department of Defense presents the Arctic as ‘a potential corridor – between the Indo-Pacific and Europe, and the U.S. homeland – for expanded strategic competitions’ (USDOD, 2019: 6) and stresses that ‘maintaining freedoms of navigation and overflight are critical to ensuring that . . . U.S. forces retain the global mobility guaranteed under international law’ (USDOD, 2019: 13). The increased accessibility of the Arctic also brings new hopes of further use of the region’s natural resources as a vehicle for economic growth (Keil, 2014). Such goals have become intertwined with development discourses and policies that focus on lack of modern infrastructure, low employment and population decline and, in this way, align the economic objectives of faraway capitals with local concerns. Canada aims to ‘close the gaps and divides that exist between this region, particularly in relation to its Indigenous peoples, and the rest of the country’ (Government of Canada, 2019: 36) and presents these gaps in a consumerist national imaginary where being ‘full participants in Canadian society’ means having ‘access to the same services, opportunities and standards of living as those enjoyed by other Canadians’ (Government of Canada, 2019: 36). The Russian government frames its Arctic policy goals in terms of avoiding a dystopia of a depopulated region lacking economic growth, and such fears are directly presented in security terms: ‘population decline’ and ‘insufficient development’ of infrastructure and business are named ‘primary threats to national security’ (OPRF, 2020: 4–5). In Norway, Northern depopulation is presented as a key concern to be addressed through investment in public education and business infrastructure (RMFA, 2020: 11). The emphasis in such ‘development’ is on natural resources such as fossil fuels and rare earth minerals, trans-Arctic shipping routes and tourism. Russia is particularly clear in its focus on fossil fuels; ‘increasing oil and gas extraction rates, advancing oil refining, and producing liquefied natural gas and gas-chemical products’ are considered ‘primary objectives for the economic development of the Arctic zone’ (OPRF, 2020: 7). The development of the Northern Sea Route as a ‘competitive national transportation passage in the world market’ is named a ‘primary’ Russian national interest (OPRF, 2020: 4). Other states also emphasise ‘new economic opportunities, for example in the form of new maritime routes and extraction of natural resources’ (Kofod, 2020: 1). In some states, the role of fossil fuels in extractive ambitions is arguably receding. In its previous Arctic strategy, the US anticipated the Arctic’s role in ‘future United States energy security’ through its ‘proved and potential oil and gas natural resources that will likely continue to provide valuable supplies to meet U.S. energy needs’ (The White House, 2013: 7). Now, ‘the Arctic’s significant deposits of in-demand minerals essential to key technology supply chains’ (The White House, 2022: 6) have ostensibly replaced fossil fuels as the main extractive interest. Yet such shifts leave intact visions of major extractive operations dependent on (or facilitated by) a warming Arctic. More generally, there is an assumption of compatibility between interests in extractivism and economic growth and climate and environmental policies. Imagined futures contain ‘safe and environmentally-responsible shipping’ (Government of Canada, 2019: 49), ‘the sustainable use of natural resources’ (OPRF, 2020: 9) and ‘sustainable tourism’ (Ministry of Foreign Affairs of Denmark, Greenland and the Faroe Islands, 2011: 24). Technological innovation is, unsurprisingly, anticipated as the main way to realise the sustainability of these activities. In contrast to this assumed compatibility with environmental objectives, the economic opportunities are portrayed as in need of protection against interests from other states. The US expresses commitment to protect ‘freedom of navigation’ in the Arctic against perceived Russian threats, alleging that Russia ‘is attempting to constrain freedom of navigation through its excessive maritime claims along the Northern Sea Route’ (The White House, 2022: 6). As described above, this interest in freedom of navigation is partly military, but also acts to protect an economic order. The US argues for ‘a shared interest in a peaceful and stable region that allows the Arctic nations to realise the potential benefits of greater access to the region’s resources’ (USDOD, 2019: 4), underpinned by US military power. Russia, for its part, has named ‘actions by foreign states and (or) international organizations to obstruct the Russian Federation’s legitimate economic or other activities in the Arctic’ a ‘primary challenge to national security’ (OPRF, 2020: 5). Here, China is also constructed by Western states as an economic security threat. While under the President Biden, the US threat perception in the Arctic appears to have shifted to an almost exclusive focus on Russia (The White House, 2022); the prior Trump administration indicated strong concerns that ‘China is attempting to gain a role in the Arctic in ways that may undermine international rules and norms, and there is a risk that its predatory economic behavior globally may be repeated in the Arctic’ (USDOD, 2019: 6), a sentiment shared by Denmark and Norway (Ministry of Foreign Affairs of Denmark, 2022: 23; RMFA, 2020: 11). China is certainly explicit about its ambitions in the Arctic, which it portrays as an increasingly ‘global’ space. It argues that due to the changing environment and increased accessibility, ‘the Arctic situation now goes beyond its original inter-Arctic States or regional nature’, and the stress on ‘global implications’ is used to justify China’s identification as a ‘Near-Arctic State’ and ‘important stakeholder in Arctic affairs’ (english.gov.cn, 2018). Yet contrary to the impression given by Western states, Chinese material and institutional visions for the future are strikingly similar to those of the littoral states: development of shipping routes, materials extraction and tourism under promises of sustainable development and governed by international law (english.gov.cn, 2018). Hence, the mistrust expressed by other states does not concern explicit differences in visions of Arctic futures. Rather, the imaginary of economic development is securitised along the lines of geopolitical blocs, with economic cooperation across these blocs rendered problematic. Implications for the security politics of solar geoengineering Our analysis has revealed stark differences between scientific security imaginaries in the geoengineering literature and the security imaginaries of Arctic states. First, climate change is constructed as a concern in different ways. In the scientific imaginaries, climate change, and especially the prospect of Arctic tipping points, are front and centre. The Arctic is primarily interpreted through its climate-restorative potential, as imagined through computational Earth system models that imagine futures of controlled Arctic climates – and by extension, controlled global climates. By contrast, state imaginaries of the Arctic are not oriented towards preventing climate change but anticipate a mixture of desirable and undesirable outcomes from rising temperatures, which are seen as an inevitable background for the region’s future. Responses to climate change – such as increased demand for rare earth minerals – are becoming issues of concern and questions of security, more so than climate change itself (cf. McLaren and Corry, 2023), which stands as an unquestioned precondition for other strategic decisions. Whether the Arctic should be a venue of increased activity is not in doubt. This stands in sharp contrast to ideas of geoengineering which presuppose that hindering accessibility in the region for economic and military purposes, for example, by restoring sea ice, would be acceptable to all states involved. Second, the scientific security imaginaries exhibit a liberal institutionalist understanding of international politics and rely on a view of the Arctic as a global commons to be leveraged for the needs of an ostensible global humanity. In this, imaginaries of Arctic geoengineering do not differ from their planet-scaled counterparts (McLaren and Corry, 2021), except perhaps in the immediacy of imagined experimentation and deployment. Yet the Arctic case contains a unique contradictory claim. Geoengineering in the Arctic is justified partly by claims that it would be more politically tractable, drawing on discourses of Arctic exceptionalism that see it as a special region where inter-state cooperation on common interests can be shielded from exterior geopolitical dynamics and conflicts. But while the envisaged methods of geoengineering are bounded in the Arctic, they still aim to achieve global climatic effects.16 Prospective geoengineers thus make two further assumptions: that effects outside the Arctic are overall benign and/or that governance is only relevant in the case of unfavourable effects. The latter relies on a liberal rationalist imaginary of world politics, where costs and benefits are readily identified and acted upon, coordinated by institutions if required, undermining the initial presumption that the Arctic can be shielded from global conflictual geopolitics. Especially with the Russian invasion of Ukraine, this idea of Arctic exceptionalism is also increasingly obsolete – the Arctic is undergoing de-exceptionalisation, as indicated by the de facto collapse of the flagship of Arctic multilateralism, the Arctic Council. Schemes that envision deployment of Arctic geoengineering as market-driven are also likely to be less immune to geopolitical obstacles than their developers imagine. Such interventions assume an international order governed by multilateral institutions including markets for carbon removals or ‘cooling credits’. But even for those states which subscribe to similar liberal aspirations, this order is subject to uncertainty, in the Arctic and elsewhere, and is consequently understood as something which must be secured. The mistrust from Western states about China’s interests in the Arctic, although ostensibly similar and compatible with Western aspirations of Arctic futures, highlights the current and increasing uncertainty over the future of such a Western-dominated liberal economic order. Taken together, these differences reveal a deep disjuncture between the security imaginaries of Arctic geoengineering and state strategies. Given the relative strength of state security actors and institutions compared to environmental ones, the political feasibility of Arctic geoengineering appears to preclude a purely environmental logic driving development and/or deployment. It raises the question of which rationales and scenarios would become subject to modification – or disappear completely – to take account of economic, geopolitical, security and other aims. In this light, it is notable that there is one point of convergence between the state and scientific security imaginaries: technological solutionism. States might conceivably adopt geoengineering to partly mitigate Arctic warming (or ice degradation) while still leaving the environment accessible enough for increased resource extraction, transcontinental shipping and tourism. However, such a scenario – a form of mitigation deterrence (McLaren, 2016) – is hardly an expression of the scientific security imaginary, which, having securitised Arctic tipping points as a threat to a global humanity, sees the protection and restoration of the Arctic climate as the overarching priority. Furthermore, far from prospective geoengineers’ expectations that envision the interventions as supported by local and Indigenous populations, this scenario would further instrumentalise the Arctic to the ends of interests outside the region, which clearly amounts to a continuation and intensification of the neo-colonialism that characterises many parts of the Arctic to this day (Greaves, 2016). As clearly indicated by Sámi-led opposition to SCoPEx and opposition to the Arctic Ice Project led by Arctic Indigenous organisations,17 many Arctic Indigenous persons consider SG incompatible with their understandings of sustainability. As a case study, the Arctic provides more general lessons for SG and security. The region has attracted the attention of geoengineering researchers in part because they understand it as a political best case, and the legacy of multilateralism and science diplomacy in the region might seem to support such an assessment. However, even in a such a best case, the underlying imaginaries of geoengineering clash directly with the political ambitions of the states which would need to support, if not implement, the geoengineering interventions. In other words, SG is unlikely to be implemented for the purposes envisioned in scientific circles, in the Arctic context or elsewhere, least of all in the kind of globally ‘optimal’ manner envisaged in computer model experiments. Should further climatological research reveal SG to be technically feasible and climatically desirable – a question not yet settled – the technology would enter the quagmire of an increasingly competitive and conflictual planetary geopolitics and would need to be integrated with state policies that, for the moment, show no signs of adopting climate change as a primary issue. Our conclusions also have implications for McDonald’s (2023) contemplation of geoengineering albeit only ‘in the service of ecological security: a concern with the resilience of ecosystems themselves’ (p. 566). While McDonald acknowledges the problem of finding political purchase for making nature itself the object of security, he does not explore in detail the particular form geoengineering would take as a security measure. Here, we have studied the work of researchers and others who, arguably, invoke ecological security through appeals to necessity or emergency with Arctic ecosystems as the referent object. Through their work to develop geoengineering from general principles into workable interventions (i.e. which technique would be used, how it would be designed, who would be deploying it and where and with what purpose), they appeal to particular understandings of international security. This demonstrates how even attempts to make nature itself the referent object of security in practice depends on understandings about human societies – here theorised as imaginaries. Importantly, these scientific security imaginaries do not appear to align with state security imaginaries. In drawing our conclusions, we do not suggest that state imaginaries alone will determine the future of Arctic geoengineering. We afford them more power relative to the scientific imaginaries, since the former are backed by considerably more institutional, material and discursive power. But imaginaries are dynamic entities subject to change in unpredictable ways. There are prior examples of scientific cooperation between nations under geopolitical strife, including in the Arctic during the Cold War (Bertelsen, 2020), and a scenario where technical cooperation on SG leads to ‘spillover effects’ inducing restorative and sustainable forms of peacebuilding has been suggested as a hypothesis to be investigated (Buck, 2022). Still, there is also a long and consistent history of science being a proxy for and entangled with geopolitics and economics in the region (Doel et al., 2014; Goossen, 2020), and our analysis of Arctic de-exceptionalisation suggests that ‘geoengineering peacebuilding’ is getting increasingly unlikely as tensions continue to rise. A different vein of uncertainty concerns the internal contradictions of state security imaginaries – between the willingness to seize new opportunities for resource extraction and shipping, and other policy goals of environmental protection and national security. How these contradictions are managed, and which aspects are ultimately prioritised, will play a key role in forming the future of the Arctic (cf. Albert and Vasilache, 2018) and in deciding the opportunities for and political desirability of geoengineering interventions. Therefore, while analysing imaginaries can only take us so far in anticipating the security implications of SG, they provide an important foundation for conceptualising the very problems at stake in this anticipation. As climate impacts intensify and the incentives for geoengineering deployment increase – whether as a technocratic ‘climate policy option’ (Irvine and Keith, 2021), as a way of defending empire (Surprise, 2020) or “fossil fuel-dependent ‘ways of life’” (McLaren and Corry, 2023: 1), the imaginaries outlined in this article will be increasingly likely to collide, in the Arctic and elsewhere. AcknowledgmentsThe research for this article was part of the International Security Politics and Climate Engineering (ISPACE) project hosted at the Department of Political Science, University of Copenhagen. The authors thank the three anonymous reviewers for their insightful comments and suggestions and are grateful for comments given to an initial presentation of the research idea at the International Congress of Arctic Social Sciences (ICASS X) in June 2021. N.K. thanks the Copenhagen Center for Disaster Research for hosting him while conducting the analysis for this article in 2022.FundingThe author(s) disclosed receipt of the following financial support for the research, authorship, and/or publication of this article: This research was carried out with funding from the Independent Research Fund Denmark (Danmarks Frie Forskningsfond).Footnotes1. The latter approaches may also be categorised as ‘nature-based solutions’ or adaptation. In this sense, they are hybrid measures, and we include them here because they also directly or indirectly affect the radiation balance.2. See Centre for Climate Repair. Available at: https://www.climaterepair.cam.ac.uk/refreeze (accessed 5 March 2024).3. For an influential example of internalism, see Jasanoff (2015).4. Now, the ‘carbondioxide-removal.eu’ newsletter. Available at: https://carbondioxide-removal.eu/news/ (accessed 1 August 2023).5. Searches were conducted in the spring of 2022.6. We later chose to include China’s Arctic policy for important additional context.7. In terms of technical effectiveness, some estimates in fact suggest interventions in the Arctic may be less effective than at lower latitudes (Duffey et al., 2023).8. For the latter, see Desch et al. (2017).9. There are some limited exceptions (Baiman, 2021; Moore et al., 2021).10. Although many invocations of soft geoengineering explicitly exclude SAI and MCB, arguments that employ the core distinction between global, risky approaches and more targeted benign ones have also been used to justify Arctic-specific MCB, due to the ‘vastly reduced levels of seeding’ making negative side effects ‘vastly reduced or eliminated’ (Latham et al., 2014: 9). The former UK Chief Scientific Advisor David King has also recently referred to MCB as ‘a biomimicry system’ (The Current, 2022). While much rarer, arguments about reduced side effects have also been applied to Arctic-targeted SAI (Lee et al., 2021).11. Van Wijngaarden et al.’s full review of environmental risks is found in their supplemental compendium (https://doi.org/10.5281/zenodo.10602506).12. We thank an anonymous reviewer for the insight on remote impacts. In the extreme case, strong Arctic cooling without proportional cooling of the Antarctic would create a change in hemispheric heat balance which would most likely shift the Intertropical Convergence Zone southwards, leading to severe decreases in rainfall across the Sahel, parts of the Amazon and Northern India; however, this risk is usually discussed as an outcome of SAI specifically, due to its higher cooling potential (Duffey et al., 2023).13. 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