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Energy & Economics
A dedollarisation concept with the BRICS on top of a pile of US dollar bills.

BRICS and De-Dollarization as a Geopolitical Industrial Policy: Implications for Cuba, Venezuela, and Argentina

by Alberto Maresca

ABSTRACT  This paper examines de-dollarization as a geopolitical industrial policy within the BRICS framework and its implications for Cuba, Venezuela, and Argentina. De-dollarization, a process aimed at reducing reliance on the US dollar, has gained momentum among BRICS nations as a response to economic sanctions, monetary sovereignty concerns, and external financial shocks, particularly following the 2008 global financial crisis. For Cuba and Venezuela, de-dollarization is necessary due to US sanctions, pushing them toward alternative  financial  mechanisms  through  BRICS  partnerships. Cuba’s  possible  de-dollarization  follows  increased ties with Russia, China, and Iran. Regarding Venezuela, despite its partial dollarization, Caracas seeks  to  strengthen  non-dollar  transactions  through  oil  trade. In  contrast,  under  President  Javier  Milei,  Argentina  has  rejected  BRICS  and  continues  to  debate  dollarization,  reflecting  the  country’s  historical  and economic ties to the US dollar. The study highlights that de-dollarization is a State-led, multilateral process influenced by external economic conditions and geopolitical alignments. While Cuba and Venezuela actively integrate with BRICS to reduce dollar dependence, Argentina’s approach remains uncertain, shaped by ideological and financial considerations. Keywords: De-dollarization, BRICS, Cuba, Venezuela, Argentina INTRODUCTION De-dollarization is almost a synonym of BRICS. The reduction  of  US  dollar  dominance  and  the  consequential dependence on it represent critical stakes for BRICS countries. Nonetheless, there are nuances and differences amongst BRICS members on monetary policies. Since the first summits (2009–2010), BRICS  asserted  the  Global  South’s  need  to  prioritize  trade  in  domestic  currency  and  refrain  from  US  dollar  pegging. For  initial  members  like  China  and  Russia,  as  well  as  newly  associated  countries  such  as  Iran  and  Cuba,  Western  sanctions  are  the  main  driver  for  de-dollarization. Instead,  for  Brazil,  India, and the majority of most recent BRICS partners  (primarily  from  Africa  and  Southeast  Asia),  de-dollarization  means  enhancing  their  monetary sovereignty,  fostering  domestic  currencies’  value,  and  avoiding  depending  on  US  institutions:  Treasury and Federal Reserve. De-dollarization pertains to  monetary  and  public  policies. Therefore,  it  is  a  state-led process. For this reason, it might be considered an industrial policy. It is necessary to outline that this article adopts the term geopolitical industrial  policy  for  a  State-led  economic  strategy  that,  unlike  inward-oriented  monetary  or  financial  policies, is deeply intertwined with the outward-looking dimension of foreign policy. Hence,  this  work  examines  de-dollarization  as  a  geopolitical  industrial  policy  within  the  BRICS  framework  and  its  implications  for  Cuba,  Venezuela,  and  Argentina. De-dollarization,  a  process  aimed  at  reducing  reliance  on  the  US  dollar,  has  gained momentum  among  BRICS  nations  as  a  response  to economic sanctions, monetary sovereignty concerns,  and  external  financial  shocks,  particularly  following the 2008 global financial crisis. For Cuba and  Venezuela,  de-dollarization  is  necessary  due  to  US  sanctions,  pushing  them  toward  alternative  financial  mechanisms  through  BRICS  partnerships. Cuba’s  possible  de-dollarization  follows  increased  ties  with  Russia,  China,  and  Iran. Regarding  Venezuela, despite its partial dollarization, Caracas seeks to  strengthen  non-dollar  transactions  through  oil  trade. In  contrast,  under  President  Javier  Milei,  Argentina has rejected BRICS and continues to debate dollarization, reflecting the country’s historical and economic ties to the US dollar. The study highlights that de-dollarization is a State-led, multilateral process  influenced  by  external  economic  conditions  and geopolitical alignments. While Cuba and Venezuela actively integrate with BRICS to reduce dollar dependence,  Argentina’s  approach  remains  uncertain,  shaped  by  ideological  and  financial  considerations. It is undebatable that there are differences between usual industrial policies and de-dollarization. Indus-trial policies look inward, are fashioned upon domes-tic  matters,  and  contradict, court,  multilateral  efforts. De-dollarization  is  a  geopolitical  industrial  policy that looks outward, focusing on the role of a given country in the world economy. Without multilateralism, a State pursuing de-dollarization would quickly become a pariah. As a geopolitical industrial policy,  de-dollarization  owes  its  rationale  to  external  shocks. It  is  safe  to  define  de-dollarization  as  exogenously  motivated. The  2008  global  financial  crisis (GFC) represented the critical external shock for  BRICS  members  to  escalate  their  de-dollarization objectives: “[E]specially  since  the  2008  global  financial  crisis,  central banks of many countries have been trying to diversify their portfolios to shift away from the US dollar through liquidating holdings of US Treasuries and increasing other assets including the euro, yen, renminbi and gold.” (Li, 2023, p. 9).  The 21st century wrought incentives to de-dollarization that finally sparked because of the GFC. However,  the  mainstream  doubts  surrounding  de-dollarization involve its feasibility. There are no tools to objectively  measure  the  status  of  de-dollarization  or its future outcomes. Notwithstanding limitations, de-dollarization  is  increasingly  attracting  Global  South economies. Specifically looking at Latin America,  this  work  outlines  how  de-dollarization  becomes  an  obligation  for  sanctioned  countries:  Cuba  and  Venezuela. The  two  ALBA  governments  mingled  with  BRICS  for  a  long  time,1  with  Havana  joining the forum in association and Venezuela almost on the same route, stopped by the Brazilian veto in the  Kazan  summit. Cuban  and  Venezuelan  de-dollarization finds in BRICS a multilateral opportunity.  The third country examined is Argentina since the government  of  Javier  Milei  refused  to  enter  BRICS  and  continuously  flirted  with  dollarizing  the  economy. From President Menem’s pegging to the US dollar (uno a uno) to the 2001 Corralito, Argentina’s recent economic history inevitably rests on currency issues (IMF, 2003). Unlike Venezuela, and on the contrary of Cuba (which is not part of the IMF), Argentina’s economic policies intertwine with Bretton Woods  institutions. That  might  be  the  reason  why  neoliberal Argentinian economists found in dollarization  a  solution  for  Buenos  Aires  (Cachanosky  et  al., 2023).  1. Force Majeure De-Dollarization for Cuba and Venezuela  Since  1999,  when  Fidel  Castro  and  Hugo  Chávez  coincided, de-dollarization meant an industrial foreign policy to antagonize US hegemony. In Cuba, de-dollarization  is  a  more  difficult  process  than  usual  assumptions  and  certainly  more  challenging  than  in  Venezuela. 2004  marked  the  year  when  the  US  dollar  was  officially  prohibited  on  the Caribbean Island, to reverse the dual currency  system  implemented  since  the  Special  Period  (Herrera  &  Nakatani,  2004). The  extra-territoriality  of  US  sanctions,  affecting  in  their  secondary effect  Cuba’s  trade,  led  Havana  to  a  de-dollarization fashioned upon the path that Deligöz (2024) identified  for  China  and  Russia. Besides  realpolitik  and  geopolitical  strategies,  Cuba’s  association  with  BRICS,  occurred  in  October  2024,  is  the  la-test  effort  to  de-dollarize. Venezuela’s  economic  crises and COVID-19 pushed Cuba into continuous indebtedness to survive, with US dollars reallowed but  still  at  limited  provision  due  to  Washington’s  restrictions  (Luis,  2020). To  give  account  of  its  urgencies,  in  a  few  months,  Havana  moved  from  apparent dollarization to initiatives for de-dollarization, thanks to BRICS. Over the summer, Primer Minister Manuel Marrero enabled USD payments in the  tourist  sector  (Gámez  Torres,  2024)  to  tackle  the balance of payments deficit with liquidity. For  a  country  obliged  to  rapidly  change  industrial  policies,  the  BRICS  opportunity  could  not  be  mis-sed. Cuba’s  reliance  on  Russia,  China,  and  Iran  may  materialize   a   complete   de-dollarization   that   can   favor  BRICS  projects  and  escape  US  sanctions. Of  course, the evident permanence of the bloqueo, regardless  of  who  runs  the  White  House,  is  the  main  driver for Cuba’s de-dollarization. A similar but quite nuanced situation applies to Venezuela as well. From the Bolivarian era inaugurated by President Chávez, de-dollarization  entangled  foreign  policy  objectives  even before US sanctions. The Sucre digital currency was  created  by  the  governments  of  Venezuela  and  Ecuador  as  the  main  ALBA  initiative  to  de-dollarize  commercial  transactions  among  Bolivarian  nations  (Benzi et al., 2016). ALBA-promoted Sucre was analogous to BRICS’ favoring of blockchains and digital currencies, limiting the USD to a reference value for the  bloc’s  transactions  (Mayer,  2024). US  sanctions  on Venezuela’s oil production, sparked under the first Trump Administration, meant a significant remotion of USD-denominated transactions for Caracas. Considering  ALBA’s  slow  progress  and  the  infeasibility  of fully adopting the Sucre, President Maduro had to look at BRICS for solutions. Despite  not  having  diplomatic  relations  with  Washington,  Venezuela  is  still  an  IMF  member. Ladasic points  out  that  “[a]s  Venezuela  joined  the  pack  of  countries  trading  oil  outside  of  USD  and  has  instead priced it in Chinese yuan, BRICS together with Venezuela  already  have  16%  needed  for  IMF  veto  power to use in a crisis” (2017, p. 100). The rentier characterization of the Venezuelan economy and its dependency  on  oil  exports  make  de-dollarization  a necessity. As per Cuba, unilateral policies are not enough. Venezuela’s  outcry  merged  with  inflation,  the  devaluation  of  the  bolívar,  and  a  paralysis  of  the  Venezuelan  Central  Bank  (BCV)  that  put  total  dollarization on the industrial-public policies’ table (Briceño  et  al.,  2019). Although  the  country  is  still  under  a  sort  of  de  facto  dollarization,  Venezuela’s  economic  resurrection  should  occur  together  with  a  de-dollarization  strategy. Failure  to  enter  BRICS  in the Kazan summit provides a temporary brake to Venezuela’s  de-dollarization,  but  the  prolific  trade  with China, Russia, Iran, and Türkiye will, in all cases, align Venezuela with BRICS policies. 3. Argentina: De-Dollarizing a Passion Economists  were  surely  interested  in  Javier  Milei’s  dollarization  claims. Less  than  a  year  into  his  government,  dollarization  seems  impossible  to  the  libertarian  president. Milei’s  negative  to  BRICS  demonstrates  that  de-dollarization  is  currently  not  considerable  for  Casa  Rosada. Nevertheless,  it  is  relevant to outline that Argentinian academia questioned  the  role  of  the  USD  and  studied  economic  policies  involving  de-dollarization. Corso  and  Sangiácomo (2023), in affiliation with the Central Bank of  Argentina  (BCRA),  argued  that  de-dollarization  might  help  in  relieving  the  extreme  inflation  saw  under  Alberto  Fernández’s  ruling. Other  authors  implied  that  the  Kirchners’  limitations  on  USD  access would lead to a gradual de-dollarization of the economy,  but  with  constraints  particularly  from  a  USD dominated housing market across Latin America  (Luzzi,  2013). If  under  the  Kirchners,  and  with  support of South American left-leaning geopolitics, de-dollarization  could  really  offer  a  pathway  for  the Argentine economy, with Milei that is barely an option. The  Argentine  relation  with  the  USD  does not hold a clear ideological cleavage. Argentinians’ passion for the dollar, as stressed by Bercovich and Rebossio (2013), embraced diverse political figures such as Perón, Aníbal Fernández (a prominent Kirchnerist politician), and Martínez de Hoz. The peso’s continuous  instability  legitimized  the  widespread  informal adoption of the USD, with first insight fore-seeable in the currency devaluation subsequent to the Great Depression (Díaz Alejandro, 1970). There is also a nationalistic meaning behind the peso, whose  national  heroes  imprinted,  from  Belgrano  to  Evita (Moreno Barreneche, 2023), portray a sentimental attachment to the banknotes that Argentinians do not want to erase. In sum, Argentina’s de-dollarization is as difficult as dollarization. Milei’s obsession for US hegemony inserts de-dollarization in a faraway scenario. Moreover,  Donald  Trump’s  victory,  who  promised  high tariffs to countries that unpeg from the USD (Butts,  2024),  constitutes  a  natural  barrier  to  de-dollarization. Its political viability might depend on an eventual Peronist succession to Milei. Argentina’s financial closeness  to  China,  and  a  possible  resume  of  BRICS  talks,  could  indicate  de-dollarization  as  a  future  last  resort. In this sense, de-dollarization within the BRICS framework might help Argentina in solving structural issues: Chronic external debt and dependency on Bretton Woods institutions. CONCLUSIONS De-dollarization is State-led and can be considered a  geopolitical  industrial  policy. Cuba,  Venezuela,  and  Argentina  show  that  de-dollarization  depends  on  geopolitical  calculus  and  economic  considerations. The incentives may be different, ranging from US sanctions to devaluation of the national currency. However,  unlike  dollarization,  de-dollarization  cannot  be  pursued  unilaterally. The  rise  of  BRICS  motivates  Global  South  countries  to  de-dollarize  under its guarantees. For Cuba and Venezuela, the association  with  BRICS  and  the  interdependence  with other sanctioned economies like Russia, China, and Iran, make de-dollarization an opportunity. Argentina’s  relation  with  the  USD  follows  its  turbulent  economic  history. Simultaneously,  there  is  passion  for  dollars and nationalism toward the peso banknotes. In this  context,  even  Milei  showed  that  dollarization  is  in  no way easier that de-dollarization. The currency issues affecting Argentina might not be resolved by neither of the two policies, but a future BRICS collaboration could bring de-dollarization again into the political debate. NOTES1  ALBA  references  the  Alianza  Bolivariana  para  los  Pueblos  de  Nuestra  América,  a  regional  organization  founded  by  Cuba  and  Venezuela,  including Bolivia, Honduras, Nicaragua, and several Caribbean islands. It was created in 2004 under the auspices of Hugo Chávez.REFERENCESBenzi,  D.,  Guayasamín,  T.,  &  Vergara,  M.  (2016). ¿Hacia  una  Nueva   Arquitectura   Financiera   Regional?   Problemas   y  perspectivas  de  la  cooperación  monetaria  en  el  AL-BA-TCP. Revista Iberoamericana de Estudios de Desarrollo, 5(1), 32–61. https://doi.org/10.26754/ojs_ried/ijds.193. Bercovich, A., & Rebossio, A. (2013). Estoy verde: Dólar, una pasión argentina. Aguilar.Butts, D. (2024, September 9). Trump’s vow of 100% tariffs on nations that snub the dollar is a lose-lose for China and U.S., economist says. CNBC. https://www.cnbc.com/2024/09/09/economist-calls-trumps-threat-to-tariff-countries-that-shun-the-dollar-a-lose-lose.html. Cachanosky, N., Ocampo, E., & Salter, A. W. (2023). Les-sons from Dollarization in Latin America. Free Market Institute  Research  Paper  No.  4318258,  AIER  Sound  Money  Project  Working  Paper  No.  2024-01.  https://doi.org/10.2139/ssrn.4318258. Corso, E. A., & Sangiácomo, M. (2023). Financial De-dollarization in Argentina: When the wind always blows from the East. BCRA Economic Research Working Paper No. 106. https://www.econstor.eu/handle/10419/297801.Deligöz, H. (2024). The Exorbitant Privilege of US Extra-territorial  Sanctions.  İnsan  ve  Toplum,  14(3),  29–52.  https://dergipark.org.tr/en/pub/insanvetoplum/is-sue/86942/1543025. Díaz Alejandro, C. F. (1970). Essays on the Economic His-tory of the Argentine Republic. Yale University Press.Gámez  Torres,  N.  (2024,  July  18).  Cuba  moves  to  ‘partially’  dollarize  economy  as  government  struggles  to  make  payments.  Miami  Herald.  https://www.mia-miherald.com/news/nation-world/world/americas/cuba/article290210784.html. Herrera,  R.,  &  Nakatani,  P.  (2004).  De-Dollarizing  Cuba.  International  Journal  of  Political  Economy,  34(4),  84–95. https://www.jstor.org/stable/40470915. Hurtado  Briceño,  A.  J.,  Zerpa  de  Hurtado,  S.,  &  Mora  Mora,  J.  U.  (2019).  Dollarization  or  Monetary  Independence?  Evidence  from  Venezuela.  Asian  Journal  of  Latin  American  Studies,  32(4),  53–71.  https://doi.org/10.22945/ajlas.2019.32.4.53. IMF. (2003, October 8). Lessons from the Crisis in Argen-tina. Ladasic,  I.  K.  (2017).  De-Dollarization  of  Oil  and  Gas  Trade.  International  Multidisciplinary  Scientific  Geo-Conference,    17,    99–106.    https://doi.org/10.5593/sgem2017H/15. Li,  Y.  (2023).  Trends,  Reasons  and  Prospects  of  De-Dollarization. South Centre Research Paper No. 181. https://www.econstor.eu/handle/10419/278680. Luis, L. R. (2020, October 7). Cuba: Dollar Crunch, Dollarization and Devaluation. Cuba Capacity Building Project. https://horizontecubano.law.columbia.edu/news/cuba-dollar-crunch-dollarization-and-deva-luation. Luzzi,  M.  (2013).  Economía  y  cultura  en  las  interpretaciones sobre los usos del dólar en la Argentina. In  A.  Kaufman  (Ed.),  Cultura  social  del  dólar  (pp.  11–19).  UBA  Sociales.  https://publicaciones.sociales.uba.ar/index.php/socialesendebate/article/view/3319.Mayer,  J.  (2024).  De-Dollarization:  The  Global  Payment  Infrastructure  and  Wholesale  Central  Bank  Digital  Currencies.  FMM  Working  Paper  No.  102.  https://www.econstor.eu/handle/10419/297865. Moreno  Barreneche,  S.  (2023).  El  dinero  como  soporte  material  de  la  disputa  por  el  sentido  de  la  nación:  Estudio  del  peso  argentino  desde  una  perspectiva  semiótica.  Estudios  Sociales:  Revista  Universitaria  Semestral,  64,  1–19.  https://doi.org/10.14409/es.2023.64.e0046. CONFLICT OF INTERESTThe  author  declares  that  there  are  no  conflicts  of  interest related to the article.ACKNOWLEDGMENTS Not applicable.FUNDING Not applicable.PREPRINT Not published.COPYRIGHT Copyright  is  held  by  the  authors,  who  grant  the  Revista  Política  Internacional  the  exclusive  rights  of  first  publication. Authors  may  enter  into  additional agreements for non-exclusive distribution of the  version  of  the  work  published  in  this  journal  (e.g.,  publication  in  an  institutional  repository,  on  a personal website, publication of a translation or as a book chapter), with the acknowledgment that it was first published in this journal. Regarding copyright, the journal does not charge any fee for the submission, processing, or publication of articles.

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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Energy & Economics
tsmc is a Taiwanese collective circuit manufacturing company with advanced manufacturing processes

US Semiconductor Reindustrialization: Implications for the World

by Anastasia Tolstukhina

In recent years, US leadership has embraced techno-nationalism amid geopolitical and technological rivalry with China, aiming to minimise reliance on imported chips from Asia. These components are crucial for producing consumer goods, military hardware, and AI systems. The United States set the ambitious goal of developing a self-sufficient semiconductor supply chain during Donald Trump’s first term, and continued under Joe Biden. There is consensus in the United States on the critical role of unfettered access to chips when it comes to ensuring economic and national security. It is unlikely that this technological policy dynamic will undergo significant shifts in the foreseeable future. Despite a shared objective among both Republicans and Democrats to revive the US semiconductor industry, their approaches diverge significantly. Donald Trump has his own vision for advancing this sector, one that contrasts sharply with Joe Biden’s strategy. For instance, Trump has criticised aspects of Biden-era initiatives, including the 2022 CHIPS and Science Act, which he has called counterproductive. Trump, on the other hand, favours a more aggressive tariff policy and a reduction in federal spending, arguing that major tech companies can do well without additional government support. The future balance of power—both technological and geopolitical—among the key global actors will be shaped by the development trajectory of the US semiconductor industry. Biden’s semiconductor legacy The United States holds a dominant position in chip design, but maintains a relatively modest share in global semiconductor manufacturing—just 10 percent according to SIA data in 2022, and slightly up to 11 percent according to 2025 data provided by TrendForce research firm. Major US tech giants like Nvidia or Qualcomm remain heavily reliant on chips produced in Taiwan. This dependency has increasingly been seen as unacceptable by US leadership, especially in the context of the ongoing tech war with China. Washington now views such reliance as a significant national security risk. During Donald Trump’s first presidential term, the decision was made to attract leading chip manufacturers—most notably Taiwan Semiconductor Manufacturing Company (TSMC), the world’s largest contract chipmaker—to set up operations in the United States. This initiative proved successful: in 2020, TSMC agreed to invest $12 billion to build a chip fabrication plant in Arizona (Fab 21).   The Biden administration continued Trump’s push to revitalise the semiconductor industry. In August 2022, the CHIPS and Science Act was passed, allocating about $53 billion in government subsidies for the semiconductor sector, along with tax incentives to encourage both foreign and domestic firms to establish chip manufacturing operations on US soil. Additionally, the CHIPS for America programme was introduced to address several key goals, namely, to secure a stable supply chain for both cutting-edge and legacy semiconductors, to reinforce US leadership in R&D, and to boost employment, as investment in the chip industry was expected to generate hundreds of thousands of new jobs in microelectronics-related fields. Biden’s programme has borne fruit. Major chipmakers have launched large-scale construction of fabs across the United States. In 2022, Intel started building a $28 billion facility in Ohio; Samsung initiated two plants in Texas worth about $40 billion; and TSMC decided to expand its Arizona site to three modules, increasing its total investment from $12 billion to $65 billion. According to TSMC CEO C.C. Wei, the Arizona facility began mass production in the fourth quarter of 2024 using its N4 (4nm class) process technology, with performance comparable to its fabs in Taiwan. This marks the most advanced semiconductor production facility currently operating in the United States. Plans are in place to launch a second module for 3nm chip production by 2028, followed by a third module by 2030, which will manufacture 2nm and 1.6nm chips and their variants. The Biden team aimed for the United States to capture 20 percent of global advanced chip manufacturing by 2030. Democrats have adopted a comprehensive approach to rebuilding the semiconductor industry not just focusing on building advanced fabs, but also investing in support areas such as chip testing and packaging, materials production, and R&D. A substantial $13 billion in federal funds has been earmarked for these purposes. For instance, grants and loans were used to support GlobalFoundries’ plans to build an advanced packaging and photonics centre in New York State. Arizona State University also received significant support from the US Department of Commerce, including a $100 million allocation for research and development in next-generation chip packaging technologies. Wide geographic distribution is a striking feature of the emerging US semiconductor supply chain (Figure 1). Key activities are being established across numerous states: Oregon (semiconductor manufacturing), Idaho (semiconductor and material manufacturing), Utah (semiconductor manufacturing), Montana (equipment manufacturing), Colorado (semiconductor and material manufacturing), New Mexico (packaging), Kansas (semiconductor manufacturing and packaging), Louisiana (equipment manufacturing), Missouri (materials), Minnesota (semiconductor manufacturing),Michigan (materials),Indiana (packaging and semiconductor manufacturing), Ohio (materials and semiconductor manufacturing), Vermont (semiconductor R&D and manufacturing), Pennsylvania (materials), North Carolina (semiconductor manufacturing), Georgia (materials and semiconductor manufacturing), and Florida (materials and semiconductor manufacturing). Among these, several states stand out for their significance and comprehensive involvement: California (semiconductor manufacturing and R&D), Arizona (semiconductor, equipment, and material manufacturing, packaging, R&D), Texas (semiconductor and material manufacturing, packaging, R&D), and New York (materials, semiconductor manufacturing, and R&D).   According to a 2024 study by the Boston Consulting Group commissioned by the Semiconductor Industry Association (SIA), over 90 projects have been launched in 28 states since the CHIPS Act was passed, totalling nearly $450 billion in private investment. However, the Biden administration did not pursue full semiconductor self-sufficiency as a goal. There was recognition that recreating the entire supply chain domestically would, even at the initial stage, require a vast amount of time and financial resourcesНадпись: MichiganНадпись: IndianaНадпись: Pennsylvania estimated at around $1 trillion. Therefore, US policymakers have advocated for a collective semiconductor supply chain among allies and partners by building international alliances. In 2022, the Unite States proposed creating the CHIP 4 alliance (United States, South Korea, Japan, and Taiwan), which, with coordinated efforts, could have become a dominant force in the semiconductor industry capable of influencing nearly every segment of the global value chain, with the exception of assembly and testing, where mainland China currently plays a leading role. In this way, Trump’s initiative to revive the semiconductor industry has not only continued under Biden, but evolved into a more ambitious and costly programme. The SIA, in its above report, painted an optimistic picture for the future of the US semiconductor sector. It projects that chip manufacturing capacity in the United States will triple over the next decade (2022–2032), growing by 203 percent. This expansion is expected to require $646 billion in investment, or 28 percent of global capital spending in the semiconductor industry. As a result, the United States could increase its share of global chip production from the current 10 percent to 14 percent by 2032. Additionally, experts estimate that the new projects will create over 58,000 new jobs in the semiconductor sector and hundreds of thousands more in related industries.   Despite its ambitious nature, the initial phase of Biden’s semiconductor programme has revealed several challenges. The industry has run into numerous internal obstacles slowing the construction of manufacturing facilities, including a shortage of skilled labour, high labour and construction material costs, bureaucratic hurdles (e.g., obtaining environmental permits), slow disbursement of promised subsidies by the US authorities, union-related delays, cultural differences, and more. These issues have caused delays in launching chip fabrication plants, thereby slowing the pace at which the US can achieve relative technological autonomy in the rapidly evolving semiconductor field. For example, TSMC postponed the start of mass production at the first module of Fab 21 from 2024 to 2025, and delayed the second module from 2026 to 2027–2028. Intel’s costly attempt to reclaim leadership in advanced chip manufacturing has strained its budget, forcing the company to delay its Ohio fab launch from 2025 to 2030. Samsung, initially planning to start production in Texas in the second half of 2024, pushed the timeline to 2025. These delays in fab construction also impacted the schedules of launching supplier plants, including chemical and material producers like LCY Chemical, Solvay, Chang Chun Group, KPPC Advanced Chemicals (Kanto-PPC), and Topco Scientific. The external component of the Biden administration’s technology policy has also failed to develop as envisioned. After several years of existence, the CHIP 4 has failed to become a multilateral coordination mechanism, and its potential members have not assumed any binding commitments. Only one virtual meeting was held in 2023. The reason lies in internal disagreements within the alliance and concerns about various risks, including geopolitical ones. Under the Biden administration, the United States made a strong start in the semiconductor sector, launching a wide range of fab construction projects and attracting billions of dollars in public and private investment. However, the process of reviving the US semiconductor industry has proven slower than anticipated. Government subsidies have been disbursed sluggishly, with some companies yet to receive their funding, and the construction of many high-tech industrial facilities has been postponed. Moreover, Biden overestimated the willingness of US allies and partners to join formal technological alliances. Trump’s radical approach To encourage both domestic and foreign chip suppliers to set up manufacturing in the United States, Donald Trump, in contrast to Joe Biden, chose coercion (tariffs) over incentives (government subsidies). Criticising his predecessor’s CHIPS Act, Trump argued that companies didn’t need money, but rather motivation in the form of import tariffs ranging from 25 percent to 100 percent. In his view, such measures would compel businesses to invest in US chip manufacturing, especially since these companies have the financial capacity and, therefore, don’t need to rely on government funding. Almost immediately after taking office, Trump threatened chip manufacturers with higher tariffs. At first glance, this move might seem economically illogical. Why, for instance, punish TSMC—a key partner of major US fabless companies like Nvidia, Apple, and Qualcomm—especially when there is no comparable alternative, either in the United States or globally? Even Intel, despite its struggles, depends on wafers from the Taiwanese firm (its import dependency is about 30 percent). Yet despite apparent lack of logic, the “stick” approach proved effective. In early March 2025, TSMC announced plans to invest approximately $100 billion to build three new fabs for high-performance semiconductor wafers, two advanced chip packaging plants, and one R&D centre. This raises the question: did the world’s largest chipmaker really get spooked by Trump’s tariff threats and, therefore, decide to make an unprecedented investment in the US economy? In theory, TSMC—sitting in the centre of the global microelectronics industry—could have passed tariff-related costs on to its American clients, who would have had little choice but to continue purchasing its products due to the lack of viable alternatives. Furthermore, a significant share of TSMC’s semiconductors is not shipped directly to the United States, but instead follows a supply chain tour through Asia, where the bulk of chip packaging, testing, and electronics assembly occurs (this infrastructure is only just beginning to take shape in the United States, and that process is anything but fast). Analysts at Bernstein suggest that political pressure, rather than tariffs themselves, drove TSMC’s decision. That assessment holds some merit, but it appears that a combination of factors was at play. First, TSMC itself is interested in expanding its global presence. Taiwan’s Minister of Economic Affairs Kuo Jyh-Huei commented on TSMC’s $100 billion investment in the US semiconductor sector by saying, “TSMC already has plants in the United States and Japan, and is now building a new one in Germany. This has nothing to do with tariffs. TSMC’s global expansion is a major development.” Similarly, in 2020 during Trump’s first term, company representatives said that the decision to build a plant in Arizona was “based on business needs.” Indeed, the move offers several benefits to TSMC, including increased company capitalisation and minimised risks in the event of conflict with mainland China or natural disasters (earthquakes are not uncommon in Taiwan). Second, the United States remains TSMC’s primary market, and the tariff threat did play its part. In Taiwan, there’s an understanding that when Trump talks about higher tariffs, he isn’t bluffing, because his seriousness was evident during his first term and was experienced first-hand by Canada and Mexico. On April 2, 2025, nearly the entire rest of the world—including Taiwan—faced a new wave of tariffs, with Taiwanese exports to the United States hit by a 32 percent duty (though semiconductors were not yet affected). A 100-percent tariff on semiconductors is unlikely, as it would significantly damage the market value of US tech firms. Still, protective barriers on semiconductors are expected—Trump’s administration has promised to implement them in the coming months. These measures aim to level the production cost of chips between the United States and Taiwan, thereby enhancing the competitiveness of US-made semiconductors. And finally, TSMC, together with the Taiwanese authorities, is not willing to mar relations with the United States for political reasons. This became evident from TSMC’s earlier decision to support US sanctions against mainland China by refusing to supply its most advanced chips manufactured using 7nm and more sophisticated process technologies even though that market had been a significant source of profit. After TSMC announced plans to expand its presence in the United States, the Trump administration decided to take more radical action and to scrap the CHIPS and Science Act, a signature achievement of the Biden administration. However, some Republican members of Congress are calling for the law to be preserved, albeit with certain amendments. Trump’s hands are not completely untied in this regard, so it is unlikely he can ignore Congress’s position. Even if the legislation gets amended, the process will likely be drawn out, as the CHIPS and Science Act received bipartisan support and has many supporters among Republicans. Another strategically important issue for the Trump administration is the competitiveness of domestic manufacturers. According to the Taiwanese leadership, TSMC will continue to expand operations in Taiwan, and the most advanced semiconductor technologies will not leave the country. For “the most powerful AI chips in the world to be made right here in America” efforts will be needed on the part of national champions—and soon. In 2025, the leader in producing the most advanced 2nm chips will be determined. The main contenders in this race are TSMC, Samsung, and Intel. Intel, however, finds itself in a difficult position. The company has been facing serious financial troubles for several years and lags behind competitors in mastering cutting-edge production processes. The year 2024 was one of Intel’s most challenging: it underwent a major restructuring (creating a separate chip manufacturing unit, Intel Foundry), posted record losses of $18 billion, and saw a significant drop in its stock price. As a result, about 15 percent of the workforce, including CEO Pat Gelsinger, was laid off; dividend payments were suspended; and a sweeping cost-cutting plan was launched, including deep cuts in capital expenditures over the coming years and a scaling back of global expansion plans. According to Intel Products CEO Michelle Johnston Holthaus, the company failed to capitalise effectively on the artificial intelligence boom and continues to fall behind its competitors technologically. Although Intel plans to begin 18A (2nm) chip production in 2025, there are no guarantees of competitiveness in power efficiency, performance, yield rate, cost, or timely mass production. In March, media reported that Nvidia and Broadcom began testing certain chip components, but such testing, of course, does not guarantee Intel will secure orders. Apparently, the Trump administration itself has doubts about the US company’s capabilities, as it has proposed that TSMC acquire shares in Intel Foundry. Negotiations with the Asian manufacturer began only in February 2025, meaning they are still at a very early stage.   What short-term challenges does the Trump administration face in revitalising the US semiconductor industry? Technological lag There is a high likelihood that the United States will continue to lag behind Taiwan for several years in the production of advanced semiconductors. TSMC plans to begin producing chips using a 1.4nm process by 2028, while on US soil—if deadlines aren’t pushed back again—the Taiwanese firm will only be producing 3nm chips by that time. Although some hope is being placed on Intel, there is no guarantee that the American champion will be able to compete with TSMC, or that a potential collaboration with TSMC (if it acquires a stake in Intel Foundry) will be successful. Inadequate production capacity Experts estimate that the output capacity of TSMC’s factories under construction in Arizona is less than one-fifth of the company’s 5nm and 3nm capacity in Taiwan. According to analysts at Bernstein Research, with the deployment of additional production in Arizona, the United States could raise its self-sufficiency in advanced chip production to 40-50 percent between 2030 and 2032. In the near term, this would only cover about half of the chip demand from US tech giants. Moreover, TSMC has not specified clear timelines or technologies for its US expansion. Intel could partly close the gap, but that depends on how competitive its chips are and how quickly it can overcome its financial difficulties. Slow rollout of production facilities TrendForce forecasts that the US share of global advanced chip production could grow from 11 percent to 22 percent by 2030. However, the construction of TSMC’s first Arizona plant took nearly five years, and there are no guarantees that future factories will be built fast enough to double US chip output by 2030. Labour shortage Developing a relatively self-sufficient microelectronics ecosystem requires a highly skilled workforce. However, the United States is facing severe staff shortages. By 2030, estimates suggest a shortfall of 67,000 to 90,000 professionals in the semiconductor field. China’s response to US sanctions The United States is not the only country leveraging interdependence in the semiconductor industry as a tool of pressure. China is responding in kind, though currently in a relatively restrained manner. In 2024, the Chinese government decided to completely ban exports of gallium, germanium, antimony, and ultra-hard materials to the United States even though the restrictions apply only to direct shipments. These actions not only drive up raw material prices (e.g., antimony prices more than tripled since early 2024), but also force US authorities to consider domestic mining and search for alternative suppliers abroad. High production costs According to the SIA, building and operating chip fabs in the United States is 30 to 50 percent more expensive than in Asia. Unofficial reports suggest that chips made at Fab 21 in Arizona cost 10 percent to 30 percent more than their Taiwanese counterparts (more precise figures are not publicly available). The high cost is attributed to expensive construction of facilities, high salaries (US engineers earn three times more than their Taiwanese counterparts, incomplete domestic semiconductor supply chains (some materials must still be imported)—TSMC CEO has complained about it—and complex logistics (finished wafers often need to be sent back to Taiwan or elsewhere for packaging).70 Even if tariffs eventually equalise chip pricing, US fabless companies like Apple or Nvidia may still find it more economical to source chips from Asia, where a properly functioning semiconductor ecosystem already exists—unlike in the United States, where such infrastructure is still in its infancy. Trump’s current tariff policy Imposing tariffs could lead to a significant increase in prices for components, equipment, and materials, while also injecting uncertainty into the semiconductor industry. For instance, it remains unclear how semiconductor manufacturers will operate under new tariffs on imported chip-making equipment sourced from the EU, Japan, South Korea, and Taiwan. The cost of such equipment can reach hundreds of millions of dollars—for example, the latest Low-NA EUV lithography machine from Dutch company ASML is priced at $235 million. If Intel, TSMC, and other firms are required to pay import duties of 20 percent or more, chip manufacturing in the United States will become prohibitively expensive, undermining investment plans of the manufacturers that have committed to building advanced fabs on American soil. Naturally, US officials understand that sharp moves in semiconductor policy—such as an aggressive tariff regime—carry significant risk and could spark a true technological crisis. In April 2025, the US Department of Commerce’s Bureau of Industry and Security (BIS) launched an investigation under Section 232 of the Trade Expansion Act of 1962 to determine the impact of semiconductor imports and related equipment on national security. Interested parties submitted comments, many urging extreme caution in this highly sensitive sector, which depends on a complex global supply chain split across multiple phases and countries. Thus, SIA recommended that any tariffs be phased in gradually to allow the US industry to continue functioning efficiently until domestic production capabilities are fully established. The US Chamber of Commerce called for restraint, warning that comprehensive tariffs on the semiconductor supply chain could damage US industry and undermine cooperation with allies and partners in achieving key national security goals. The Chamber also noted that foreign semiconductor companies have made long-term investment commitments to build capacity in the United States, and that political uncertainty and instability could jeopardise the stated goal of re-shoring semiconductor supply chains. *** As TSMC founder Morris Chang once said, America’s effort to ramp up its own chip production may well prove to be “a very expensive exercise in futility.” Microelectronics is one of the most complex industries in the world requiring not only massive financial investment, but also time. For decades, the industry developed within the framework of global division of labour. Now, building a relatively self-sufficient supply chain within a single country could take just as long. Yet, in the medium and long term, America’s push to revive its semiconductor industry may prove justified. The United States holds a strong position in the sector, and US companies control about 50 percent of the global semiconductor market. Furthermore, the United States remains a powerful magnet for talent, and possesses vast financial and political resources. Some experts believe that over time, the United States could weaken Taiwan’s dominance as the global hub of advanced chip manufacturing. The resurgence of the US semiconductor industry will reshape the global technological order in three key ways. First, it will trigger a transformation of the global semiconductor supply chain. Second, it will lead to greater US independence from imports of critical technologies, which means erosion of importance of some players in the industry, weakening their “technological shield”. Finally, it will cement US technological superiority in many critical industries, from AI to military systems, accelerating a global technological divide with profound geopolitical consequences. Indeed, America has the potential to become one of the world’s leading semiconductor production centres, provided that several key conditions are met, such as a favourable geopolitical environment, domestic political stability, and the absence of disruptive black swan events. However, Trump’s risky tariff policy could trigger unpredictable cascading effects, both domestically (e.g., higher prices for electronics and microelectronics products) and internationally (e.g., retaliatory tariffs by US trade partners), posing serious threats for the US semiconductor industry. First published in the Valdai Discussion Club.

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
Mercosur and European Union agreement flag

Economic integration and convergence in globalization: An analysis of the relations between Mercosur, the Pacific Alliance and the European Union

by Giuseppe Ciccone , Davide Galletti

Abstract Globalization has posed significant challenges for Latin American countries, prompting them to rethink their economic integration models. Mercosur and the Pacific Alliance, the two main regional blocs, have faced processes of economic and political convergence, albeit with different approaches: Mercosur, oriented towards protectionism, and the Pacific Alliance, which is committed to trade liberalization. In this context, the European Union emerges as a key player with which both blocs have sought to strengthen their economic relations, through strategic agreements such as the one signed in 2019, the Mercosur-EU free trade agreement. The article examines the dynamics of economic integration in Latin America, analyzing the structural divergences between the blocs and their capacity to face global challenges. In particular, it delves into the implications of the Mercosur-EU agreement, with special attention to economic impacts, sectoral cooperation opportunities and environmental challenges. The research also includes a case study on the implementation of the agreement and future prospects, complemented by an interview with the Consul of Uruguay to analyze the diplomatic position and prospects for the development of relations between Latin America and the European Union. The objective of this work is to explore how economic integration models can contribute to face global challenges, promote sustainable development and strengthen Latin America's competitiveness in the global scenario Introduction Global Context of Cooperation Between the European Union and Latin America Future cooperation between the European Union (EU) and the main Latin American trade blocs — Mercosur and the Pacific Alliance — is expected to focus on key areas such as sustainability, digitalization, and technological innovation. These sectors are essential for modernizing the involved economies and building a long-term partnership capable of addressing the economic, environmental, and geopolitical challenges of today’s global landscape. One of the main opportunities for cooperation lies in the circular economy. The EU promotes sustainable production and consumption models that aim to reduce waste and optimize resources. This approach paves the way for close collaboration with Latin American countries in waste management and reducing the environmental impact of industrial activities. The potential economic and labor impacts of this collaboration are significant, as it could create new opportunities for innovation and development in strategic sectors. At the same time, digitalization is emerging as a key pillar for the economic transformation of both regions. The EU’s Digital Alliance, for example, aims to strengthen Latin American economies by promoting connectivity, the development of digital skills, and the creation of new technological ecosystems. This effort also includes social inclusion initiatives, targeting vulnerable sectors such as informal workers and the elderly population, to reduce the digital divide and foster social inclusion. Another area of cooperation is maritime transport. The EU intends to invest in advanced and sustainable port infrastructure to improve operational efficiency and reduce the environmental impact of port activities. This initiative aligns with global sustainability goals and the EU’s broader strategy to promote environmentally responsible trade practices. However, cooperation between the EU and Latin American trade blocs also faces challenges. While the Pacific Alliance appears more inclined toward adopting advanced technologies, Mercosur faces significant structural reforms to close the technological gap among its members. Despite these hurdles, the EU is committed to supporting both regions, strengthening its role as an economic and political partner, and promoting a development model that integrates sustainability and inclusiveness. In this context, digitalization, economic modernization, and infrastructure diversification emerge as key elements to address global challenges. These factors are essential for promoting fair and inclusive development in both regions, creating a favorable environment for innovation and sustainable economic growth. The European Union considers Latin America as a strategic partner not only because of its natural resources but also due to shared values, such as the fight against climate change. Within this framework, the EU’s Green Deal and the environmental diplomacy play a crucial role in supporting ecological transition in the region, with a particular focus on renewable energy, the protection of the Amazon, and sustainable agricultural practices. Nevertheless, challenges remain, including the strong influence of traditional economic sectors like agribusiness and limited institutional capacity in some countries. Despite these issues, the EU is working to encourage the adoption of strict environmental standards through investments in sustainable projects and clean technologies, helping to reduce deforestation and improve biodiversity. The cooperation with the Pacific Alliance is particularly strong due to the region’s openness to sustainability, whereas Mercosur faces internal obstacles such as regulatory fragmentation and coordination difficulties among its members. Still, the EU continues to support initiatives in renewable energy, energy efficiency, and the bioeconomy, creating important economic opportunities for the region. Rising geopolitical competition, especially with China and the United States, is pushing the EU to strengthen its ties with Latin America by backing initiatives like the Global Gateway, which aims to promote sustainable and transparent infrastructure. Programs like “Horizon Europe” support scientific development in the region, while initiatives such as Erasmus+ encourage cultural exchange and the training of a new generation of professionals. The EU stands out for its integrated approach, aiming to promote a development model that combines economic growth, social inclusion, and environmental protection—seeking to overcome political and economic barriers and foster effective and mutually beneficial cooperation between the two regions. The main challenge remains translating these ambitions into concrete actions. The adoption of shared standards and the reduction of non-tariff barriers will be key elements in achieving fruitful cooperation. Despite the difficulties, EU–Latin America cooperation has the potential to lead the future toward sustainable and inclusive development, with positive effects on global policy, the ecological transition, and international trade. Methodology The methodology used in the preparation of this article combined extensive documentary research with the collection of primary data through direct interviews. First, documentary research served as the main foundation for analyzing the issues discussed, such as the environmental impacts and diplomatic challenges related to the Association Agreement between the European Union and Mercosur. To that end, official sources were consulted, including documents from the European Commission and reports from the European Parliament, which provide detailed data and analyses on the trade, environmental, and social aspects of the agreement. This phase of the research included a review of institutional reports, political resolutions, and other public documents available online, offering a comprehensive view of regulatory developments and the political positions adopted by European institutions and Mercosur countries. In addition to documentary research, a distinctive element of this work was an interview conducted with the General Consul of Uruguay in Spain, who provided a direct diplomatic perspective on the topic. The interview aimed to gather insights and information on the agreement negotiations from Mercosur’s point of view, exploring the political dynamics and diplomatic challenges associated with the understanding between the two blocs. The topics addressed during the interview focused on how Mercosur perceives the agreement in relation to its economic and environmental priorities, and on the measures being taken to balance development and sustainability within the framework of European policies. Finally, the research methodology was enhanced through the triangulation of information obtained by comparing data from official EU sources with the insights gathered from the interview. This approach enabled the development of a balanced and comprehensive view of the topics discussed. The combination of qualitative methods allowed for an in-depth analysis of the challenges and opportunities arising from the Mercosur–EU Agreement, as well as its social, economic, and environmental implications at the international level. Development Inside the Agreement The free trade agreement between Mercosur and the European Union, signed in 2019 after more than twenty years of negotiations, stands as one of the most ambitious examples of interregional cooperation. This treaty, which aims to create one of the largest free trade areas in the world, involves nearly 770 million people and accounts for around 25% of global Gross Domestic Product (GDP). The significance of the agreement is heightened by the current geopolitical context, marked by a rise in protectionist policies and the growing influence of China, making it crucial to strengthen ties between the two regional blocs (European Commission, 2019).   Trade relations across both sides of the Atlantic are substantial. In the previous year, European exports to the four Mercosur countries amounted to €55.7 billion, while imports of goods totaled €53.8 billion. The roots of cooperation between the European Union and Mercosur go back to the 1990s, when the EU initiated a structured dialogue with Mercosur aimed at promoting trade liberalization, political dialogue, and cooperation in various sectors. The agreement signed in 2019 can be interpreted as a strategic response to increasing global protectionist pressures. However, the ratification process has been hindered by political disagreements, economic asymmetries, and concerns over potential environmental impacts, such as deforestation and pesticide use (López, 2020). The agreement has received support from several EU countries, including Germany, Spain, and Portugal, while others — such as France, Poland, and Ireland — have opposed it due to fears related to unfair competition and food safety. Specifically, the treaty could lead to increased imports of meat and other agricultural products from Mercosur, which raises concern among EU agricultural sectors. At the same time, Mercosur views the agreement as an opportunity to strengthen its international competitiveness and reduce its economic dependence on China and the United States (Pereira, 2021). The path to ratification, still ongoing, requires a lengthy legal process involving approvals by various national parliaments. If ratified, the agreement will help reduce tariffs and simplify customs procedures, benefiting strategic sectors such as industry, chemicals, and pharmaceuticals. However, ongoing disagreements among the involved countries continue to cast uncertainty over the future of the initiative (European Commission, 2019). The future of the free trade agreement between the European Union and Mercosur stands at a critical crossroads, facing the risk of a complete breakdown in negotiations or, alternatively, a "no-deal" scenario. However, between these two extreme outcomes, there are several intermediate solutions, which could include modifications to the treaty’s controversial points or even the possibility of granting a new mandate to the European Commission to renegotiate the agreement — either partially or entirely. Such modifications could lead to significant delays in the progress already made (Brito, 2021). The Portuguese presidency of the EU Council, which began on January 1, 2025, now faces a particularly complex situation as it attempts to steer the process toward a positive conclusion. Portuguese Foreign Minister Augusto Santos Silva has expressed his intent to accelerate the ratification process and promote the agreement’s entry into force. However, resistance from France, which fears negative impacts on its agricultural and livestock sectors, remains a major obstacle. Protests by French farmers, including demonstrations and road blockades, highlight internal difficulties within the European Union (Müller, 2020). Despite this opposition, the European Commission — backed by countries like Spain and Germany — continues to push for the agreement’s ratification, highlighting the enormous economic benefits for both parties. It is estimated that the agreement could result in a €15 billion increase in GDP for the European Union and €11.4 billion for the Mercosur countries. Moreover, the elimination of customs tariffs would boost European exports, particularly in sectors such as wine, alcoholic beverages, and dairy products. For the European Union, the agreement represents not only a strategic opportunity to expand trade with South America but also a mean to strengthen its economic security amid an unstable geopolitical context (European Commission, 2021). The deal is expected to create new commercial and employment opportunities with a positive impact on both regions’ economies. Particularly, it could attract sustainable investment into Mercosur, especially in high-tech sectors. Additionally, it would support the strengthening of supply chains and enhance the EU’s economic resilience, reinforcing strategic cooperation between the two regional blocs.   However, the success of the agreement will depend on both parties’ ability to overcome existing differences, address environmental and human rights concerns, and implement effective monitoring mechanisms. On Mercosur’s side, it will be necessary to undertake economic reforms to enhance competitiveness, stimulate innovation, and attract foreign investment. Meanwhile, the European Union will face the challenge of gradually reducing agricultural subsidies to ensure fair competition (Pereira, 2021). In summary, the free trade agreement between the European Union and Mercosur represents a significant opportunity to strengthen economic cooperation between two blocs with complementary economies: the EU, a global leader in the industrial sector, and Mercosur, one of the main exporters of agricultural raw materials. The agreement aims to increase bilateral trade and direct investment, particularly in the agricultural and industrial sectors, with important implications for the future of interregional cooperation and global trade. The Association Agreement between the EU and Mercosur has raised serious concerns of both environmental and diplomatic nature. While designed to strengthen economic and political ties between the two blocs, the agreement could have devastating environmental impacts, especially considering Mercosur’s heavy reliance on agricultural exports to the EU. Brazil, the leading exporter of products like soy, beef, and coffee, stands as a clear example of these issues. The demand for these products is directly linked to deforestation, with severe consequences for vital ecosystems such as the Amazon. Although deforestation in Brazil decreased by 50% in 2023 compared to the previous year, future projections remain worrisome. The access to European markets, guaranteed by the agreement, could accelerate land conversion and intensify pressure on natural resources. Some studies estimate that the agreement could lead to the conversion of between 560 and 1,730 km² of land — an impact that, although lower than the 13,235 km² of annual deforestation recorded in the Brazilian Amazon in 2021, remains significant (FAO, 2021). A crucial chapter of the agreement is the “Trade and Sustainable Development Chapter” (TSDC), which promotes cooperation between the EU and Mercosur on environmental issues and establishes a commitment to adhere to international climate agreements, such as the Paris Agreement. However, criticism of the TSDC focuses on the lack of binding enforcement mechanisms for environmental regulations and the absence of adequate sanctions, which limits the agreement’s ability to ensure compliance with environmental commitments. Despite the creation of a joint committee to monitor the implementation of the TSDC, its effectiveness is weakened by the lack of concrete punitive tools (European Commission, 2020). The European Commission also highlights the value that Mercosur can bring in terms of agricultural and fishery products to the European market. Some of these goods — such as soy, cocoa, and coffee — are items that EU member states cannot produce or only produce in minimal quantities. Others, such as beef, poultry, honey, and cheese, compete directly with European agricultural businesses. This has fueled rural anger, particularly among French, Polish, and Italian farmers, who accuse the EU of promoting unfair competition, given that South American producers are not subject to the same regulations as their European counterparts. Concerns about increasing deforestation and the weakening of environmental and social standards are among the primary fears expressed by environmental groups and certain EU member states. During Jair Bolsonaro’s presidency (2019–2022), environmental policies were significantly rolled back, exacerbating these concerns. However, the election of Luiz Inácio Lula da Silva has raised new hopes for a renewed commitment to environmental protection, although economic priorities may complicate the negotiation process (Doyle, 2023). Despite the criticisms, the agreement presents an opportunity to promote the sustainable management of natural resources, enhance transparency in production chains, and strengthen the enforcement of environmental laws in Mercosur countries. To achieve a positive and lasting impact, however, concrete commitment from both governments and the private sector will be essential, supported by effective monitoring mechanisms and enforceable sanctions. An innovative aspect of the agreement is the inclusion of clauses that mandate the end of illegal deforestation by 2030, with a monitoring system designed to ensure compliance with these rules. Although this commitment represents an important step forward, doubts remain about its enforcement and effective oversight — particularly regarding Brazil’s compliance, given its central role in deforestation. Additionally, the agreement stipulates that only “deforestation-free” products — such as soy, beef, palm oil, and cocoa — will be allowed to enter the EU market (European Commission, 2022). Concerns related to food safety and public health are equally relevant. The importation of beef from countries where the use of antibiotics and hormones is less regulated could compromise food safety in Europe, as highlighted by an audit conducted by the European Commission. Some critics fear that the agreement may lower product quality standards and increase unfair competition for European farmers. Furthermore, there is concern that the deal could encourage industrial relocation to South America, resulting in job losses in Europe (OECD, 2021). Despite these challenges, the agreement represents a rare opportunity to strengthen interregional relations between the EU and Mercosur in the face of global challenges such as climate change and biodiversity protection. However, the success of the agreement will depend on the ability of both regions to effectively integrate economic interests with the need for social and environmental sustainability. It will be necessary to adopt strict measures to monitor the environmental and social impacts of the agreement, actively involve local communities in policymaking, and promote a development model that balances economic growth with sustainability. To further explore the issues affecting Mercosur and potential solutions for greater regional integration, we interviewed Ramiro Rodríguez Bausero, General Consul of Uruguay in Spain. During the conversation, Bausero shared his perspective on the economic and political challenges that face the bloc, as well as on the opportunities for cooperation with the Pacific Alliance and the policies needed to address emerging global problems such as climate change and food security. Below are some key excerpts from the interview, along with a commentary on how these insights contribute to a deeper understanding of the challenges and opportunities facing Mercosur in a global context. To better understand the issues influencing Mercosur, it is essential to examine the internal challenges and asymmetries among its members. According to Ramiro Rodríguez Bausero, General Consul of Uruguay in Spain, “Mercosur displays significant disparities in terms of size and level of development; there are evident inequalities between countries and regions, and these persist over time.” This observation highlights one of the core difficulties in achieving economic integration within the bloc: the economic disparities between its larger and smaller members. Resources and investments are unevenly distributed, and the inability to effectively manage these asymmetries hinders balanced growth, with larger countries often dominating the economic process. This concept is fundamental to understanding the structural limitations that constrain Mercosur’s development. Another crucial aspect is the influence of ideological orientation on the integration processes. Bausero notes that “within the bloc, different visions coexist, based on internal productive structures, and as governments change, their profiles evolve toward more or less protectionist/open policies, depending on the ideological orientation of each administration.” This phenomenon poses a major obstacle to strengthening Mercosur, as the swings between protectionist and open-market policies make it difficult to establish a coherent and long-term strategy. Ideological differences between governments further complicate the formation of a stable and strategic economic bloc. Nevertheless, despite internal challenges, there are significant opportunities for cooperation with other regional entities such as the Pacific Alliance. Bausero highlights that “strengthening ties between the two blocs presents several areas with the potential for cooperation, such as trade facilitation, reciprocal investment, physical integration, technological innovation, and the movement of people.” Although political divergences may hinder closer cooperation, these mutual areas of interest could reinforce regional integration, especially in fields like trade and technological innovation. On the environmental sustainability and climate change front, Bausero suggested that “Mercosur could implement more ambitious climate policies, promoting a transition to a low-carbon economy with measures that support renewable energy and encourage technological innovation in sustainable industries.” Adopting more advanced climate policies represents an opportunity for Mercosur to address global climate challenges. Given its significant influence over agricultural policies and natural resource management, the bloc could play a crucial role in driving the shift toward a green economy — responding to international pressure and improving its reputation as a responsible global actor. The trade potential of Mercosur, especially in the context of the agreement with the European Union, is another key issue. Bausero emphasized that “the benefits of the trade component of the Agreement show that many of the goods comprising Mercosur countries’ export offerings to the EU will receive preferential treatment in the European market.” This agreement could create new opportunities for economic growth among member countries, reducing their dependence on Asian markets — particularly China. However, internal challenges related to the agreement, especially concerning the agricultural sector, could hinder full implementation and require careful attention. Finally, reforming Mercosur has emerged as a relevant topic, with some countries, like Uruguay, advocating for a more flexible bloc. Bausero stated: “Some countries (such as Uruguay) have argued for the need to make the bloc more flexible, transforming it into a Free Trade Area (FTA), allowing each member to pursue its own international agenda, including negotiating agreements with third countries.” The proposal to transform Mercosur into a more flexible FTA reflects criticism of the bloc's rigidity. If implemented, such a reform could allow member states to adopt more individualized policies — but it also raises questions about the future of regional integration and the political and economic unity of the bloc. Another important area of development is digital cooperation and infrastructure. According to Bausero, “the so-called ‘Digital Mercosur’ is a cooperation project between the EU and Mercosur, aimed at reducing technological asymmetries and promoting common policies and strategies in the fields of the Information Society, e-commerce, and human resource training.” Digital cooperation could be one of the main drivers of growth for Mercosur, enabling member countries to overcome technological inequalities and access global markets. Digitalization and the integration of modern technologies are essential to enhancing regional competitiveness and developing an interconnected digital economy. Conclusions The free trade agreement between Mercosur and the European Union, signed in 2019, represents a significant step toward greater interregional economic integration, with the ambitious goal of creating one of the largest free trade areas in the world. However, its future remains uncertain and depends on a series of interrelated factors, including internal political divergences within the EU, environmental challenges, and economic inequalities among Mercosur members. These elements raise numerous questions and opportunities for critical reflection that could be explored in future research. First and foremost, one of the main issues to address is the environmental impact of the treaty. The "Trade and Sustainable Development Chapter" (TSDC), while establishing a commitment to international climate agreements, does not provide sufficiently binding mechanisms to ensure effective environmental protection. What is the role of trade policy in a context of growing urgency for environmental sustainability? To what extent can the current provisions halt deforestation and guarantee the sustainable use of natural resources, especially in countries like Brazil, where agricultural expansion is directly linked to ecosystem destruction? These questions could pave the way for deeper research into the monitoring and effectiveness of environmental policies within trade agreements. Another relevant issue is the question of economic asymmetries within Mercosur. The disparities among member countries, in terms of size and development level, pose a challenge to genuine economic integration. How can smaller Mercosur countries compete on equal footing with larger ones without compromising their competitiveness? Furthermore, how can it be ensured that the benefits of the agreement are more equitably distributed among the bloc's members? Answering these questions is crucial for implementing policies that promote balanced and inclusive development. The geopolitical context also plays a fundamental role. In a scenario where protectionist trends are on the rise and China's influence continues to grow, how might the agreement between the EU and Mercosur redefine trade and geopolitical relations between the two blocs? Could this agreement represent the beginning of a reorganization in global economic balances, reducing dependence on Asian markets and strengthening ties between Europe and Latin America? These questions invite a deeper analysis of the geopolitical implications of the treaty and its influence on global trade dynamics. Additionally, the proposal to reform Mercosur — advocating for greater flexibility by transforming it into a Free Trade Area (FTA) — raises important questions. How would such a reform affect the bloc’s political and economic cohesion? Would flexibility be the right approach to addressing internal differences, or could it instead lead to the fragmentation of Mercosur and undermine its ability to act as a unified player on the international stage? Finally, digital cooperation, particularly the "Digital Mercosur" project, could become one of the most promising areas of development. How could digitalization and technological cooperation between the EU and Mercosur help reduce technological disparities and promote the competitiveness of the Latin American bloc? Strengthening digital infrastructure could accelerate Mercosur’s economic growth and open new trade opportunities, but what political and technological challenges will arise in this digitalization process? In conclusion, the free trade agreement between the European Union and Mercosur represents a significant opportunity, but it also poses a range of challenges that require ongoing attention. The questions raised by this agreement— from environmental concerns and economic asymmetries to geopolitical dynamics and structural reforms within Mercosur — offer numerous starting points for future research. The ability of both regions to effectively integrate economic interests with the demands of social and environmental sustainability will be key to the long-term success and viability of the agreement. Bibliographic References Agenzia del Brasile. (2017, April 7). El MERCOSUR y la Alianza del Pacífico quieren expandir el comercio en América del Sur. https://www.gob.mx/cms/uploads/attachment/file/349593/DECLARACION_AP_MERCOSUR.pdfAlianza del Pacífico. (n.d.). El poder de la integración. https://alianzapacifico.net/en/Alianza del Pacífico. (n.d.). La Alianza del Pacífico y el Mercosur avanzan en materia de facilitación de comercio. https://alianzapacifico.net/alianza-del-pacifico-y-mercosur-avanzan-en-materia-de-facilitacion-de-comercio/Alianza del Pacífico. (n.d.). Mujeres de la Alianza del Pacífico y el Mercosur son capacitadas para la era digital. https://alianzapacifico.net/alianza-del-pacifico-y-mercosur-avanzan-en-materia-de-facilitacion-de-comercio/Avvenire. (2024, December 6). 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La convergencia entre la Alianza del Pacífico y el Mercosur: avances, estancamientos y desafíos contemporáneos. Política Latinoamericana, 14, 167–183. https:// doi.org/10.1111/lamp.12291Busso, A., & Zelicovich, J. (2016). El gobierno de Mauricio Macri y la integración regional: ¿del MERCOSUR a la Alianza del Pacífico? Coyuntura Austral, 7(37), 17–24.Clemente Batalla, I., López Burian, C., & Telias, D. (2015). *Uruguay y la Alianza del Pacífico: ¿repensar el modelo de inserción internacional? Cuadernos sobre Relaciones Internacionales, Regionalismo y Desarrollo, 10(19), 23–46.CELAC. (2018). La convergencia entre la Alianza del Pacífico y el MERCOSUR: enfrentar juntos un escenario mundial desafiante. http://hdl.handle. net/11362/43614Comisión Europea. (2019). Acuerdo de asociación entre la Unión Europea y el MERCOSUR. https://ec.europa. eu/info/food-farming-fisheries/sustainability/strategy-eu-2019-2024_enDaniels, C. (2015). The Pacific Alliance and Its Effect on Latin America: Must a Continental Divide be the Cost of a Pacific Alliance Success? Loyola of Los Angeles International and Comparative Law Review, 37(2), 153-189.El País. (2024, 5 de diciembre). Bruselas acelera para cerrar esta semana el acuerdo comercial con Mercosur a pesar del rechazo de Francia. https://elpais.com/ internacional/2024-12-05/la-comision-acelera-para-cerrar-el-acuerdo-comercial-con-mercosur-pese-al-rechazo-de-francia.htmlEuractiv. (2024, 6 de diciembre). Acuerdo UE-Mercosur: entre polémicas, oportunidades y protección del sector agrícola. https://euractiv.it/section/comercio-ed-economia-mondiale/news/accordo-ue-mercosur-tra-polemiche-opportunita-e-tutela-del-settore-agricolo/Euronews. (2024, 19 de noviembre). Acuerdo comercial UE-Mercosur: ¿quién ganaría y quién no? https://it.euronews.com/business/2024/11/19/accordo-commerciale-ue-mercosur-chi-ci-guadagnerebbe-e-chi-noFélix Peña. (2022). Asesor y miembro del grupo de asesoramiento del Programa Hemisférico de Comercio Internacional e Integración Regional en el IICA.Gallegos, J. (2021). Antagonismo, convergencia y letargo: la relación de la Alianza del Pacífico y el Mercosur. En S. C. Negro & L. Klein Vieira (Eds.), Mercosul 30 Años: Pasado, Presente y Futuro (pp. 199–218). https://www.researchgate.net/publication/354132133Gardini, G. L. (2023). La redefinición de la presencia de la UE en América Latina y el Caribe. Peter Lang.Ghiotto, L., & Echaide, J. (2019). Análisis del Acuerdo entre la Unión Europea y el Mercosur. PowerShift e.V., Berlín.Giacalone, R. (2022). Valores en la convergencia de la Unión Europea-Latinoamérica y Mercosur-Alianza del Pacífico: ¿los valores compartidos de Europa promueven la convergencia? De Europa, 5(1), 81-100.Le Monde. (2024, 16 de noviembre). UE-Mercosur: pourquoi les Français s'opposent à l'accord de libre-échangeLlairó, M. D. M. (2019). Los nuevos desafíos y ejes de poder de la integración latinoamericana: la dualidad MERCOSUR-Alianza del Pacífico (2010–2017). Anuario Latinoamericano – Ciencias Políticas y Relaciones Internacionales, 7, 111.Mercosur. (2021). XXVII Reunión Extraordinaria de la comisión administradora del Ace n. 35 Mercosur–Chile. https://documentos.mercosur.int/simfiles/docreuniones/88802_ACE35_2021_ACTA01_ES.pdfNicole Gorton & Elena Ianchovichina. (2021). Economistas en el Banco Mundial que trabajan en la eficiencia espacial de las redes comerciales en América Latina, evaluando el potencial para mejoras infraestructurales dentro de MERCOSUR y la Comunidad Andina.OECD. (2024). Disponible en. https://www.oecd.org.Palmieri, R., Amice, C., Amato, M., & Verneau, F. (2024). Beyond the Finish Line: Sustainability Hurdles in the EU–Mercosur Free Trade Agreement. Social Sciences, 13(362).Sanguinet, E. R., & Alvim, A. M. (2024). The Effects of the EU-MERCOSUR Agreement on Bilateral Trade: The Role of Brexit. International Economics and Economic Policy, 21, 227–249.Sekulić, T. (2020). The European Union and the Paradox of Enlargement: The Complex Accession of the Western Balkans. Berlín y Heidelberg: Springer Nature.Tales Henrique Nascimento Simoes. (2024). Doctorando en Geografía en la Universidad de São Paulo, Brasil, se ocupa de los desafíos geopolíticos y de integración de MERCOSUR, con particular atención a las dinámicas de conflicto y cooperación en Sudamérica. Velasco e Cruz, S. C. (2022). International Order? Inter-American Relations and Political Outlook for Latin America. En Contributions to International Relations. Cham: Springer.Zaldívar, P. M. (2024). La Relación Histórico-Cultural entre España y Latinoamérica: Clave para Potenciar la Política Exterior de la Unión Europea en América Latina. Universidad Autónoma de Madrid.Revista Política Internacional | Volumen VII Nro. 2 abril-junio de 2025. https://doi.org/10.5281/zenodo.15103813This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0). The opinions and contents of the published documents are solely the responsibility of their authors.

Energy & Economics
Xi Jinping and Vladmir Putin at welcoming ceremony (2024)

Russia and China in the Era of Trade Wars and Sanctions

by Ivan Timofeev

Economic relations between Russia and China remain high. Beijing has become Moscow's most important trading partner, and in the context of Western sanctions, it has also become an alternative source of industrial and consumer goods, as well as the largest market for Russian energy and other raw materials. At the same time, external political factors may have a growing influence on Russian-Chinese economic relations. These include the trade war between China and the United States, a possible escalation of US sanctions against Russia, and the expansion of secondary sanctions by the European Union against Chinese companies. The trade war, in the form of increased import duties on imported goods, has become one of the calling cards of Donald Trump's second term in office. The executive order he issued on April 2, 2025, provided a detailed conceptual justification for such a policy. The main goal is the reindustrialisation of the United States through the return or transfer of industrial production to the territory of the US, as well as an equalization of the trade balance with foreign countries. The basic part of Trump's order concerned all countries throughout the world and assumes a tariff increase of 10%. It goes on to determine individual duties on the goods of more than 70 countries, with its own sets for each. China became one of the few countries which decided to mirror the tariff increases. This led to a short-lived and explosive exchange of increases in duties. While it was suspended by negotiations between the two countries in Geneva, it was not removed from the agenda. In the US trade war “against the whole world”, China remains a key target. This is determined by the high level of the US trade deficit in relations with China, which has persisted for more than 40 years. Apparently, it remained comfortable for the US until China made a noticeable leap in the field of industrial and technological development. Such a leap allowed China to gradually overcome its peripheral place in the global economy, displace American and other foreign goods from the domestic market, and occupy niches in foreign markets. Despite the critically important role of American components, patents and technological solutions in a number of industries, China has managed to reduce its dependence on them. The growing industrial and technological power of the PRC is becoming a a political problem for the US. It was clearly identified during the first term of Trump's presidency. Even then, the US pursued a course toward the technological containment of China. Despite the temporary respite in the trade war, US pressure on China will remain. The tariff policy may be supplemented by restrictive new measures (sanctions) in the field of telecommunications and other industries. During the new term of Donald Trump's presidency, the politicisation of issues that the Biden administration avoided putting at the forefront of US-Chinese relations began again. These include the problem of Hong Kong autonomy and the issue of ethnic minorities in the Xinjiang Uyghur Autonomous Region of China. Both issues received a high level of politicisation during Trump's first term. The US-China trade war has so far had little effect on Russian-Chinese relations. The increase in US tariffs has had virtually no effect on Russia. Russia is already facing a significant number of restrictive measures, and the volume of trade with the United States has been reduced to near zero since the start of Moscow’s Special Military Operation in 2022. However, Russia may feel the effects of the trade war. For example, the United States may require China to purchase American energy resources as a measure to correct the trade balance. Obviously, such a measure is unlikely to solve the imbalance. However, it has the potential to affect the volume of Russian oil supplies to China in one way or another. In addition, the trade war as a whole may affect oil prices downwards, which is also disadvantageous for Russia. On the other hand, Russia is a reliable supplier of energy resources for China, which will not politicise them. Even in the context of new aggravations of the trade war, China is unlikely to refuse Russian supplies. Another factor is US sanctions against Russia. After the start of Russian-American negotiations on Ukraine in 2025, Washington avoided using new sanctions, although all previously adopted restrictive measures and their legal mechanisms are in force. However, Donald Trump failed to carry out a diplomatic blitzkrieg and achieve a quick settlement. The negotiations have dragged on and may continue for a long time. If they fail, the United States is ready to escalate sanctions again. Existing legal mechanisms allow, for example, for an increase in the list of blocked persons, including in relation to Chinese companies cooperating with Russia. This practice was widely used by the Biden administration. It was Chinese companies that became the key target of US secondary sanctions targeting Russia. They fell under blocking financial sanctions for deliveries of industrial goods, electronics and other equipment to Russia. However, there was not a single large company among them. We were talking about small manufacturing companies or intermediary firms. At the same time, the Biden administration managed to significantly complicate payments between Russia and China through the threat of secondary sanctions. US Presidential Executive Order 14114 of December 22, 2023 threatened blocking sanctions against foreign financial institutions carrying out transactions in favour of the Russian military-industrial complex. In practice, such sanctions against Chinese financial institutions were practically not applied, except for the blocking of several Chinese payment agents in January 2025. However, the very threat of secondary sanctions forced Chinese banks to exercise a high level of caution in transactions with Russia. This problem has not yet been fully resolved. New legal mechanisms in the field of sanctions, which are being worked on in the United States, may also affect Russian-Chinese relations. We are talking about the bill introduced by US Senator Lindsey Graham and several other senators and members of congress. Their bill assumes that in the event of failure of negotiations with Russia on Ukraine, the US executive branch will receive the authority to impose 500% duties on countries purchasing Russian raw materials, including oil. China may be among them. This threat should hardly be exaggerated for now. The passage of the bill is not predetermined. Even if it is signed into law, the application of 500% tariffs against China will be an extremely difficult matter. Recent rounds of the trade war have shown that China is ready for retaliatory measures. However, the emergence of such a norm will in any case increase the risks for business and may negatively affect Russian suppliers of raw materials. Another factor is EU sanctions policy. Unlike the US, the EU continues to escalate sanctions against Russia despite the negotiations on Ukraine. Brussels is expanding the practice of secondary sanctions, which also affect Chinese companies. In the context of a deepening economic partnership between China and the EU, this factor seems significant. However, in reality, it will play a peripheral role. The EU's practice of secondary sanctions is still significantly more limited than the American one. It does not affect any significant Chinese companies. Problems may be created by the expansion of EU bans on the provision of financial messaging services for Russian banks—this will affect their relations with Chinese counterparties. But such bans stimulate the acceleration of the use of the Chinese CIPS payment system by Russians, which has the functionality of transmitting financial messages. Compared to the US, the EU policy factor remains secondary. First published in the Valdai Discussion Club.

Energy & Economics
Alternative or renewable energy financing program, financial concept : Green eco-friendly or sustainable energy symbols atop five coin stacks e.g a light bulb, a rechargeable battery, solar cell panel

The Success of Climate Change Performance Index in the Development of Environmental Investments: E-7 Countries

by Başak Özarslan Doğan

Abstract Climate change is considered to be one of the biggest problems acknowledged globally today. Therefore, the causes of climate change and solutions to this problem are frequently investigated. For this reason, the purpose of this study is to empirically examine whether the ‘Climate Change Performance Index’ (CCPI) is successful in increasing environmental investments for E-7 countries with the data for the period of 2008–2023. To achieve this aim, the Parks-Kmenta estimator was used as the econometric method in the study. The study findings provide strong evidence that increases in the climate change performance support environmental investments. High climate change performance directs governments and investors toward investing in this area; therefore, environmental investments tend to increase. The study also examined the effects of population growth, real GDP and inflation on environmental investments. Accordingly, it has been concluded that population growth and inflation negatively affect environmental investments, while GDP positively affects environmental investments. 1. Introduction There is a broad consensus that the main cause of climate change is human-based greenhouse gas emissions from non-renewable (i.e., fossil) fuels and improper land use. Accordingly, climate change may have serious negative consequences as well as significant macroeconomic outcomes. For example, an upward trend of temperatures, the rising sea levels, and extreme weather conditions can seriously disrupt the output and productivity (IMF, 2008a; Eyraud et al., 2013). Due to the global climate change, many countries today see environmental investments, especially renewable energy investments, as an important part of their growth strategies. Until recent years, the most important priority of many countries was an improvement in the economic growth figures. Still, the global climate change and the emergence of many related problems are now directing countries toward implementing policies which would be more sensitive to the environment and would ensure sustainable growth rather than just increase the growth figures. (Baştürk, 2024: 327). The orientation of various countries to these policies has led to an increase in environmental investments on a global scale. A relative rise of the share of environmental investments worldwide is not only a medium-term climate goal. It also brings many new concepts to the agenda, such as an increasing energy security, reduction of the negative impact of air pollution on health, and the possibility of finding new growth resources (Accenture, 2011; McKinsey, 2009; (OECD), 2011; PriceWaterhouseCoopers, 2008; Eyraud et al., 2013). Today, environmental investments have a significant share in energy and electricity production. According to the World Energy Outlook (2023), investments in environmentally friendly energies have increased by approximately 40% since 2020. The effort to reduce emissions is the key reason for this increase, but it is not the only reason. Economic reasons are also quite strong in preferring environmental energy technologies. For example, energy security is also fundamentally important in the increase in environmental investments. Especially in fuel-importing countries, industrial plans and the necessity to spread clean (i.e., renewable) energy jobs throughout the country are important factors (IEA WEO, 2023).  In economic literature, environmental investments are generally represented by renewable energy investments. Accordingly, Figure 1 below presents global renewable energy electricity production for 2000–2020. According to the data obtained from IRENA (2024) and Figure 1, the total electricity production has increased by approximately 2.4% since 2011, with renewable energy sources contributing 6.1% to this rate, while non-renewable energy sources contributed 1.3%. In 2022 alone, renewable electricity grew by 7.2% compared to 2021. Solar and wind energy provided the largest growth in renewable electricity since 2010, which reached 11.7% of the global electricity mix in 2022.   Figure 2 below presents renewable energy investments by technology between 2013 and 2022. As shown in Figure 2, photovoltaic solar. and terrestrial wind categories are dominating, accounting for 46% and 32% of the global renewable energy investment, respectively, during 2013–2022.   Economic growth supported by environmental investments is impacted by the type and number of energy used to increase the national output. Thus, both the environmental friendliness of the energy used and the rise in energy efficiency is bound to reduce carbon emissions related to energy use and encourage economic growth (Hussain and Dogan, 2021). In this context, in order to minimize emissions and ensure sustainable economic growth, renewable energy sources should be used instead of fossil resources in energy use. Increasing environmental investments on a global scale, especially a boost in renewable energy investments, is seen as a more comprehensive solution to the current global growth-development and environmental degradation balance. In this context, as a result of the latest Conference of the Parties held in Paris, namely, COP21, it was envisaged to make an agreement covering the processes after 2020, which is accepted as the end year of the Kyoto Protocol. On December 12, 2015, the Paris Agreement was adopted unanimously by the countries that are parties to the UN Framework Convention on Climate Change (Kaya, 2020). As a result of the Paris Agreement and the reports delivered by the Intergovernmental Climate Change Panels, international efforts to adapt to the action to combat climate change and global warming have increased, and awareness has been raised in this area (Irfan et al., 2021; Feng et al., 2022; Anser et al., 2020; Zhang et al., 2021; Huang et al., 2021; Fang, 2023). The rise in the demand for low-carbon energy sources in economies has been caused by environmental investments such as renewable energy investments. The countries that are party to the Paris Agreement, commit to the way to achieve efficient energy systems through the spread of renewable energy technologies throughout the country (Bashir et al., 2021; Fang, 2023). This study empirically examines the impact of the climate change performance on increasing environmental investments for E-7 countries. The climate change performance is expressed by the ‘Climate Change Performance Index’ (CCPI) developed by the German environmental and developmental organization Germanwatch. The index evaluates the climate protection performance of 63 developed and developing countries and the EU annually, and compares the data. Within this framework, CCPI seeks to increase clarity in international climate policies and practices, and enables a comparison of the progress achieved by various countries in their climate protection struggle. CCPI evaluates the performance of each country in four main categories: GHG Emissions (40% overall ranking), Renewable Energy (20%), Energy Use (20%), and Climate Policy (20%). In calculating this index, each category of GHG emissions, renewable energy, and energy use is measured by using four indicators. These are the Current Level, the Past Trend, the Current Level Well Below 2°C Compliance, and the Countries’ Well Below 2°C Compliance with the 2030 Target. The climate policy category is evaluated annually with a comprehensive survey in two ways: as the National Climate Policy and the International Climate Policy (https://ccpi.org/methodology/).  Figure 3 below shows the world map presenting the total results of the countries evaluated in CCPI 2025 and their overall performance, including the four main categories outlined above.   As it can be seen from Figure 3, no country appears strong enough to receive a ‘very high’ score across all categories. Moreover, although Denmark continues to be the highest-ranking country in the index, but it still does not perform well enough to receive a ‘very high’ score overall. On the other hand, India, Germany, the EU, and the G20 countries/regions will be among the highest-performing countries/regions in the 2024 index. When we look at Canada, South Korea, and Saudi Arabia, they are the worst-performing countries in the G20. On the other hand, it can be said that Türkiye, Poland, the USA, and Japan are the worst-performing countries in the overall ranking. The climate change performance index is an important criterion because it indicates whether the change and progress in combating climate change is occurring across all countries at an important level. The index is important in answering various questions for countries under discussion. These questions are expressed below:  • In which stage are the countries in the categories in which the index is calculated?• What policies should countries follow after seeing the stages in which they are in each category? • Which countries are setting an example by truly combating climate change? These questions also constitute the motivation for this study. The sample group for the study was selected as E-7 countries, which are called the Emerging Economies; this list consists of Türkiye, China, India, Russia, Brazil, Mexico, and Indonesia. The reason for selecting these particular countries is that they are undergoing a rapid development and transformation process, and are also believed to be influential in the future with their increasing share in the world trade volume, huge populations, and advances in technology. Besides that, when the relevant literature has been examined, studies that empirically address the relative ranking of the climate change performance appear to be quite limited. In particular, there are almost no studies evaluating the climate change performance index for the sample group considered. Therefore, it is thought that this study will be of great importance in filling this gap in the literature. The following section of the study, which aims to empirically examine whether the climate change performance is effective in developing environmental investments in E-7 countries, includes national and international selected literature review on the subject. Then, the model of the study and the variables chosen in this model are introduced. Then, the findings obtained in the study are shared, and the study ends with discussion and policy proposal. 2. Literature Review 2.1. Studies on environmental investment  The excessive use of fossil-based energy sources, considered non-renewable and dirty energy, along with industrialization, constitutes a large part of carbon emissions and is regarded as the main reason of climate change. Thus, countries have turned to renewable energy investments with the objective to minimize the reaction of climate change and global warming, by introducing technologies which are considered more environmentally friendly and cleaner. Global energy investments are estimated to exceed 3 trillion US dollars by the end of 2024, and 2 trillion US dollars of this amount will go to clean and environmentally friendly energy base technologies and infrastructure. Investment in environmentally friendly energy has been gaining speed since 2020, and the total expense on renewable energy, networks, and storage now represents a higher figure than the total spending on oil, gas, and coal (IEA, 2024). When the energy economics literature is examined, since environmental investments are mostly represented by renewable energy investments, renewable energy investments studies and studies in related fields shall be discussed in this study section. One of the important studies in this field is the work of Eyraud et al. (2013). In the study, the authors analyzed the determinants of environmental and green (clean) investments for 35 developed and developing countries. Accordingly, they stated in the study that environmental investment has become the main driving force of the energy sector, and China has generally driven its rapid growth in recent years. In addition, in terms of the econometric results of the study, it has been found that environmental investments are supported by economic growth, a solid financial system suitable for lower interest rates, and higher fuel prices. Fang (2023) examined the relationship between investments in the renewable energy sector, the economic complexity index, green technological innovation, industrial structure growth, and carbon emissions in 32 provinces in China for the period of 2005–2019 by using the GMM method. Based on the study results, the economic complexity index causes an increase in China’s carbon dioxide levels. On the contrary, all of the following – the square of the economic complexity index, investments in clean energy, green technical innovation, and the industrial structure – were found to help decrease carbon dioxide emissions. Another important study in this field is the work of Masini and Menichetti (2013). The authors examined the non-financial sources of renewable energy investments in their study. Accordingly, the study results show that knowledge and confidence in technological competence positively impact renewable energy investments. In addition, trust in policy measures only impacts PV (Photovoltaic) and hydropower investments, whereas institutional pressure negatively impacts renewable energy investments. Finally, the study stated that experienced investors are more likely to fund innovations in renewable energy. One of the important studies on renewable energy investments is the work of Ozorhon et al. (2018). To support and facilitate the decision-making process in renewable energy investments, the authors determined the main criteria affecting investors’ decisions by reviewing the literature and examining sector-level practices. According to the findings, economic criteria, like policies and regulations, funds availability, and investment costs were the most important factors in the decision-making process for renewable energy investments. Xu et al. (2024) examined the relationship between the renewable energy investments and the renewable energy development with a threshold value analysis for China. According to the results, impact of the clean (renewable) energy investment on renewable energy development has a significant threshold value, and the general relation between them is a ‘V’ type non-linear relation. At this point, the study suggests that the state should keep spending in the segment of investments in clean energy, increase the financial proficiency, and ensure an efficient financial infrastructure for clean energy in China. 2.2. Studies on Climate Change and their Impact on Economic Variables  The widespread use of fossil-based energy sources, considered dirty energy, continues to create a negative externality in carbon emissions despite the globally implemented policies like the Kyoto Protocol and the Paris Agreement (Rezai et al., 2021). The economic literature on climate change focuses particularly on the adverse effect of climate change on the economy. One of the important studies in this field is the study of Fan et al. (2019). In their study, the authors focused on the impact of climate change on the energy sector for 30 provinces in China and conducted their research with the help of a fixed-effect regression feedback model. As a result of the study, it was found that hot and low-temperature days positively affected the electricity demand. On the other hand, Singh et al. (2022) examined the effects of climate change on agricultural sustainability in India with data from 1990–2017. On the grounds of the study, it was found that India’s agricultural sector was negatively impacted by the climate change. In this regard, it is stated that India needs to take powerful climate policy action so that to reduce the adverse effect of the climate change and increase its sustainable agricultural development. One of the important studies in this field is the study of Gallego-Alvarez et al. (2013). This study investigated how the climate change affects the financial performance with a sample of 855 international companies operating in sectors with high greenhouse gas/ CO2 emissions from 2006–2009. The results reveal that the relationship between the environmental and financial performance is higher in times of economic crisis triggered by climate crisis. In other words, these results show that companies should continue investing in sustainable projects in order to achieve higher profits. Kahn et al. (2021) examined the long-term macroeconomic impact of the climate change by using a panel data set consisting of 174 countries between 1960 and 2014. According to the findings, the amount of output per capita is negatively affected by temperature changes, but no statistically significant effect is observed for changes in precipitation. In addition, according to the study’s results, the main effects of temperature shocks also vary across income groups. Alagidede et al. (2015) examined the effect of climate change on sustainable economic growth in the Sub-Saharan Africa region in their study. The study stated that the relationship between the real GDP and the climate change is not linear. In addition, Milliner and Dietz (2011) investigated the long-term economic consequences of the climate change. Accordingly, as the economy develops over time, and as progress is achieved, this situation will automatically be less affected by the adverse impact of the climate change. Structural changes made with economic development will make sectors more sensitive to the climate change, such as the agricultural sector, which would become stronger and less dependent. Dell et al. (2008) examined the effect of climate change on economic activity. The study’s main results are as follows: an increase of temperatures significantly decreases economic growth in low-income countries. Furthermore, increasing temperature does not affect economic growth in high-income countries. On the other hand, when examining the effects of climate change on the economy, the study of Zhou et al. (2023) is also fundamentally important. Zhou et al. (2023) examined the literature on the effects of climate change risks on the financial sector. In the studies examined, it is generally understood that natural disasters and climate change reduce bank stability, credit supply, stock and bond market returns, and foreign direct investment inflows. In their study for Sri Lanka, Abeysekara et al. (2023) created a study using the general equilibrium model ORANI-G-SL with the objective to investigate the economic impacts of the climate change on agricultural production. The study findings suggest that reductions in the production of many agricultural products will lead to increases in consumer prices for these agricultural commodities, resulting in a decrease in the overall household consumption. The projected decrease in crop production and increases in food prices will increase the potential for food insecurity Another important document in this field is the study by Caruso et al. (2024) examining the relationship between the climate change and human capital. The study findings reveal a two-way result regarding the effects of the climate change damages and the effects of climate change mitigation and adaptation on the human capital. Accordingly, the climate change has direct effects on health, nutrition and welfare, while changes in markets and damage to the infrastructure are expressed as indirect effects. In addition to these studies, the uncertainty of the climate change policies also exerts an impact on economic factors. Studies conducted in this context in recent years have also enriched the literature on the climate change. For example, Çelik and Özarslan Doğan (2024) examined the effects of uncertainty of the climate change policies on economic growth for the USA by using the ARDL bounds test. Their results confirmed the existence of a positive and statistically significant relationship between the climate policy uncertainty and economic growth in the USA. 3. Model Specification  This study empirically examines whether the climate change performance index successfully develops environmental investments in E-7 countries. For further details related to the mathematical model check https://doi.org/10.15388/Ekon.2025.104.2.6 4. Conclusion and Policy Implications  Today, many national and international initiatives are within the scope of combating global warming and climate change. In addition, many developed and developing countries are differentiating their growth and development policies with the objective to prevent these disasters. Although they vary from country to country, as well as from region to region, these policies mostly represent those policies which reduce carbon emissions and ensure energy efficiency. At this point, the key factor is renewable energy investments, which represent environmentally friendly investments. However, according to Abban and Hasan (2021), the amount of environmentally friendly investments is not the same in every country. This is because the determinants of environmentally friendly investments vary from country to country. While financial and economic factors are more encouraging in increasing these investments in some countries, international sanctions are the driving force in this regard in some other countries as well. This study aims to empirically examine whether CCPI is effective in the success of environmental investments in the E-7 countries in the period of 2008–2023 with the help of the Parks-Kmenta estimator. In this direction, the study’s dependent variable is environmental investments, represented by renewable energy investments. On the other hand, the climate change performance is represented by the ‘Climate Change Performance Index’ calculated by Germanwatch, which constitutes the main independent variable of the study. Other control variables considered in the study are the population growth, the real GDP per capita, and inflation. The study findings provide strong evidence that increases in the climate change performance support environmental investments. High-rate climate change performance drives governments and investors toward investing in this area; thus, environmental investments tend to increase. These results are consistent with the study results of Raza et al. (2021). As a result of their study, Raza et al. (2021) stated that the climate change performance is an important channel for the general environmental change, and that renewable energy has a very important role in this regard.  In addition, the study concludes that population growth and inflation negatively affect environmental investments. These results are consistent with Suhrab et al. (2023), but not with Yang et al. (2016). While Suhrab et al. (2023) obtained results regarding the negative effects of inflation on green investments, Yang et al. (2016) focused on the positive effect of population on renewable energy. Finally, the effect of the real GDP per capita on environmental investments has been found to be positive. These results are also consistent with Tudor and Sova (2021). The authors found that Real GDP encourages green investments. This study offers policymakers a number of policy recommendations. These are presented below. • One of the important factors affecting the climate change performance is the raising of awareness of the populations in these countries at this point, and providing them with the knowledge to demand clean energy. In this way, consumers, would demand environmental energy, and investors would invest more in this area. This is of great importance in increasing environmental investments. • The climate change performance also shows how transparent the energy policies implemented by countries are. Therefore, the more achievable and explanatory are the goals of policy makers in this regard, the more climate change performance will increase, which will strengthen environmental investments. • Moreover, the initial installation costs are the most important obstacles on the way toward developing environmental investments. At this point, the country needs to develop support mechanisms that would encourage investors to invest more. • Environmental investments, similar to other types of physical investments, are greatly affected by the country’s macroeconomic indicators. At this point, a stable and foresighted economic policy will encourage an increase in such investments. The countries in the sample group represent developing countries. Therefore, in many countries in this category, the savings rates within the country are insufficient to make investments. 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Energy & Economics
The Strait of Hormuz, the Gulf of Oman, and Iran pinned on a political map, February 1, 2024

The Economic Effects of Blockage of the Strait of Hormuz

by World & New World Journal Policy Team

한국어로 읽기 Leer en español In Deutsch lesen Gap اقرأ بالعربية Lire en français Читать на русском I. Introduction On 13 June 2025, Israel attacked more than a dozen locations across Iran in the largest assault on the country since the Iran-Iraq war of the 1980s. Beginning on the evening of 13 June, Iran retaliated by launching ballistic missiles and drones at Israel. Conflicts between the two countries have intensified. Amid intensified conflicts between Israel and Iran, the US attacked Iran by bombing three Iranian nuclear sites on 22 June 2025. In retaliation for these attacks from the US and Israel, Iran may consider closing or blocking the Strait of Hormuz. In fact, Iran’s parliament has reportedly approved of the closing of the Strait of Hormuz on 22 June 2025. However, on 24 June 2025, President Trump announced a ceasefire between Iran and Israel, thereby reducing the possibility of the blockage of the Strait of Hormuz by Iran. Nonetheless, there is still a possibility that conflicts between Iran and Israel continue and then Iran may reconsider the closing of the Strait. This is because the ceasefire is so fragile that the conflicts between Israel and Iran can take place at any time. If the closing of the Strait of Hormuz happens, it will have significant impacts on global economy, in particular on Asian economies, because 84% of the crude oil and condensate and 83% of the liquefied natural gas that moved through the Strait of Hormuz went to Asian markets in 2024. This paper analyzes the impacts of Iran’s closure or blockage of the Strait of Hormuz on the global economy with a focus on Asian economies. II. Examples of Geopolitics Impacting Energy Prices Crude oil remains the world's most geopolitically charged commodity. Despite robust supply growth and growing energy transitions, as Figure 1 shows, turmoil in oil-producing regions such as Russian invasion of Ukraine in 2022 continues to ripple through prices.   Figure1: Examples of Geopolitics Impacting Crude Oil Prices As Figure 2 shows, in June 2025, global oil price surged into the mid‑$70s per barrel amid escalating Iran–Israel tensions and threats to the Strait of Hormuz. In mid‑June 2025, Israeli airstrikes on Iranian nuclear infrastructure led to an immediate 7–11% increase in the Brent crude oil price. The market reacted swiftly to the geopolitical risk, particularly over fears of supply disruption through the Strait of Hormuz. Iranian lawmakers, who threatened to close the Strait of Hormuz, finally approved of closing the Strait on 22 June 2025. While tanker traffic continued, the Brent crude oil price briefly climbed to $79.50 and then dropped to $74.85.   Figure 2: Movements of crude oil (WTI) and Brent oil prices III. The importance of the Strait of Hormuz 1. Location of the Strait of Hormuz As Figure 3 shows, the Strait of Hormuz, located between Oman and Iran, connects the Persian Gulf with the Gulf of Oman and the Arabian Sea. The strait is deep enough and wide enough to handle the world's largest crude oil tankers, and it is one of the world's most important oil chokepoints.  Figure 3: Picture of the Strait of Hormuz 2. Oil flows through the Strait of Hormuz As Table 1 shows, large volumes of oil flow through the Strait of Hormuz, and very few alternative options exist to move oil out of the strait if it is closed. In 2024, oil flow through the strait averaged 20 million barrels per day (b/d), or the equivalent of about 20% of global petroleum liquids consumption. In the first quarter of 2025, total oil flows through the Strait of Hormuz remained relatively flat compared with 2024.  Table 1: volume of crude oil, condensate, petroleum transported through the Strait of Hormuz Although we have not seen maritime traffic through the Strait of Hormuz blocked following recent tensions in the region, the price of Brent crude oil (a global benchmark) increased from $69 per barrel (b) on June 12 to $74/b on June 13, 2025. This fact highlights the importance of the Strait to global oil supplies. Chokepoints are narrow channels along widely used global sea routes that are critical to global energy security. The inability of oil to transit a major chokepoint, even temporarily, can create substantial supply delays and raise shipping costs, potentially increasing world energy prices. Although most chokepoints can be circumvented by using other routes—often adding significantly to transit time—some chokepoints have no practical alternatives. Most volumes that transit the Strait of Hormuz have no alternative means of exiting the region, although there are some pipeline alternatives that can avoid the Strait. 3. Destinations Flows through the Strait of Hormuz in 2024 and the first quarter of 2025 made up more than one-quarter of total global seaborne oil trade and about one-fifth of global oil and petroleum product consumption. In addition, around one-fifth of global liquefied natural gas trade also transited the Strait of Hormuz in 2024, primarily from Qatar. Based on tanker tracking data published by Vortexa, Saudi Arabia moves more crude oil and condensate through the Strait of Hormuz than any other country. In 2024, exports of crude and condensate from Saudi Arabia accounted for 38% of total Hormuz crude flows (5.5 million b/d). As Figure 4 shows, 84% of the crude oil and condensate and 83% of the liquefied natural gas that transported through the Strait of Hormuz went to Asian nations in 2024. China, India, Japan, and South Korea were the top destinations for crude oil moving through the Strait of Hormuz. Asia accounted for a combined 69% of all Hormuz crude oil and condensate flows in 2024. These Asian markets would likely be most affected by supply disruptions at Hormuz.  Figure 4: volume of crude oil and condensate transported through the strait of Hormuz In 2024, the United States imported about 0.5 million b/d of crude oil and condensate from Persian Gulf countries through the Strait of Hormuz, accounting for about 7% of total U.S. crude oil and condensate imports and 2% of U.S. petroleum liquids consumption. In 2024, U.S. crude oil imports from countries in the Persian Gulf were at the lowest level in nearly 40 years as domestic production and imports from Canada have increased. IV. Economic Effects of the Blockade of the Strait of Hormuz Iran has repeatedly threatened to block the Strait of Hormuz, notably during crises with the United States in 2011, 2018 and 2020. So far, these threats have never materialized into a total closure, but the mere mention of them is enough to provoke crude oil price rises. According to many economists and energy experts, a blockade of the Strait of Hormuz would have significant economic impacts, including sharp increases in oil prices, disruptions to global supply chains, and potential economic sanctions. These effects could ripple through various sectors, affecting businesses, consumers, and global economies alike. The 2021 Suez Canal blockage provides a relevant, if smaller-scale, precedent. The six-day disruption in the Suez Canal caused approximately $9.6 billion per day in global trade delays according to Lloyd's List Intelligence. A Strait of Hormuz closure would likely generate significantly larger economic impacts given the strategic importance of the energy resources involved. 1. Short-term Impacts of the blockade of the Strait of Hormuz Main short-term effects of the blockage of the Strait of Hormuz are as follows:· Increased Oil Prices:A blockage would likely lead to temporary spikes in global oil prices, potentially above $100 per barrel, due to supply disruptions and increased demand. · Disrupted Supply Chains:The Strait of Hormuz is a vital transit point for oil and LNG, and any disruption could cause significant delays and disruptions to global supply chains. · Higher Shipping Costs:With increased demand and reduced supply, shipping costs, including insurance premiums, would rise. · Energy Costs:Higher oil prices would translate to higher energy costs for consumers and businesses, impacting various sectors.  2. Long-term Impacts of the blockade of the Strait of Hormuz Main long-term effects of the blockage of the Strait of Hormuz are as follows:· Reduced Oil Production:Oil exporters might reduce production to conserve resources or diversify export routes, potentially leading to long-term supply shortages. · Economic Sanctions:In response to a blockade, major oil buyers might exert pressure on oil-producing states to increase supply, potentially leading to economic sanctions against Iran. · Diversification of Trade Routes:Oil-producing states and major oil importers might explore alternative trade routes to reduce reliance on the Strait of Hormuz, potentially shifting trade patterns. · Geopolitical Instability:The Strait of Hormuz is a strategic chokepoint, and any disruption could lead to increased geopolitical tensions and conflicts.  3. Overall Economic Consequence  Overall economic effects of the blockage of the Strait of Hormuz are as follows:· Increased inflation:Higher energy costs would contribute to inflation in various countries, impacting consumers and businesses.· Global economic slowdown:Disruptions to supply chains and increased costs could lead to a slowdown in global economic growth.· Regional economic instability:The Strait of Hormuz is a key economic artery for the Middle East, and any disruption could lead to significant economic instability in the region.  V. Analysis of Economic Effects of the Blockade of the Strait of Hormuz According to several Western banks, a complete closure of the Strait could cause crude Oil prices to soar above $120 to $150 a barrel, or even more if the conflict between Israel and Iran is prolonged. According to Deutsche Bank, the scenario of a total closure of the Strait, causing an interruption of 21 million barrels a day for two months, could push oil price to over $120 a barrel, or even beyond if global supplies are permanently disrupted. Analysts from Rabobank, a Dutch multinational banking and financial services company, even mention a spike towards $150 a barrel, recalling that in 2022, after Russia invaded Ukraine, the Brent crude oil price briefly touched $139. But the difference here is major: Persian Gulf oil is geographically concentrated and trapped in a single access point, they note. TD Securities, a Canadian multinational investment bank, points out that the oil market is currently in a situation of oversupply, but if the Strait of Hormuz are blocked, even temporarily, no production capacity - neither from OPEC nor the United States - can immediately compensate for a shortfall of 17 to 20 million barrels/day. According to analyses from these Western banks, consequences of the shutdown of the Strait of Hormuz are below: • Energy inflation: Crude oil and gas prices would soar, affecting household bills, industrial costs and overall inflation. An oil price surge above $120 would trigger a drop in global growth, similar to 1973, 1990 or 2022, claims Deutsche Bank. • Energy shock in Europe and Asia: Europe is still largely dependent on Qatari LNG, which transits through Hormuz. And for Asia, the closure of the Strait would be a major blow, particularly for China, India and South Korea, according to ING, a Dutch multinational banking and financial services corporation. • Disruption of supply chains: Beyond energy, Hormuz is also a key axis of global maritime trade. A prolonged closure would increase marine insurance premiums, impacting the prices of imported goods, and delaying many imports. According to JP Morgan, the situation remains fluid, and the magnitude of potential economic impact is uncertain. However, the impact is likely to be uneven globally.S&P Global projects substantial economic consequences across multiple regions if disruptions through the Strait of Hormuz take place:· Middle East: Direct production and export disruptions would immediately impact regional economies dependent on energy revenues.· Asia-Pacific: The region’s high energy dependency creates a multiplier effect, where initial price shocks trigger broader economic impacts.· Europe: While less directly dependent on Gulf oil than Asia, Europe would face secondary supply chain bottlenecks and inflationary pressures. The Asia-Pacific region faces severe vulnerability, with approximately 84% of its crude oil imports transiting through the Strait of Hormuz according to International Energy Agency data from 2025. This dependency creates a significant economic exposure that extends far beyond immediate energy price effects. For example, nearly 90% of Iran’s oil exports go to China. China has relatively diversified oil import sources and large reserves. However, markets such as India, South Korea, Japan, and Indonesia, which rely heavily on Middle Eastern oil, will be more vulnerable. Higher sustained oil prices would have far-reaching economic consequences in Asia, including China. India, South Korea, and Japan. Even China, with their high dependence on Middle Eastern oil, would see their inflation rates accelerate, their economic growth drop and the price of goods rise because of an increase in energy prices. If rising fuel costs continue, they could be even more devastating for emerging markets in Southeast Asia. Specifically, India is highly exposed to Middle East energy. More than 60% of its oil comes via Hormuz. A $10 hike in global crude will cuts India’s GDP growth by 0.3% and raises inflation by 0.4%, according to India’s Ministry of Finance. Shipping insurers have already raised premiums by 20%. Cargo rerouting around the Cape of Good Hope adds 15–20 days and significant costs. Indian refiners are holding prices for now, but margins are tightening. According to Brig Rakesh Bhatia, an India security expert, it’s not just about energy. India’s trade with Iran, especially Basmati rice exports worth ₹6,374 crore in FY 2024–25, faces disruption due to insurance issues and port uncertainty. According to Amitendu Palit, a Senior Research Fellow and Research Lead (trade and economics) in the Institute of South Asian Studies (ISAS) at the National University of Singapore, the impacts of closing of the Strait of Hormuz or its disruptions on India are below: •  India, which imports about two-thirds of its crude and nearly half of its LNG through the Strait of Hormuz, stands to lose significantly in case of disruption. A closure or disruption in the Strait of Hormuz would spell trouble for India. Nearly 70% of its crude oil and almost 40% of its LNG imports pass through this route, with Qatar alone supplying nearly 10 million tonnes of LNG in 2024. Any blockage could severely impact energy security and prices.• Energy prices: Surging oil and gas costs could spike domestic inflation, especially in transport and food.• Currency pressure: Rising import bills would widen the current account deficit and weaken the rupee.• Sectoral impact: Aviation, logistics, tyres, and manufacturing sectors could face cost surges.• Though India holds strategic oil reserves, experts caution these are built for short-term supply shocks—not sustained disruption from a regional war. According to Palit, the major impacts on India result from the escalation in crude oil prices. India is one of the largest importers of crude oil in the world after China, Europe and the United States (US). However, unlike China, which is the largest global buyer of Iranian crude oil, India’s main sources of crude oil are Iraq, Saudi Arabia and Russia, followed by the United Arab Emirates and the US. Crude oil price rises will impact India’s overall import bill. Though many Indian refiners have long-period forward contracts to purchase crude oil at previously agreed prices, future such contracts entered into now will have to factor in the prevailing higher prices. Needless to say, spot purchases of crude oil, based on immediate requirements, will be at much higher prices. Higher crude prices will impact domestic prices across the board. Refiners are unlikely to absorb these prices and will pass them on to consumers. Liquefied petroleum gas, diesel and kerosene – all of which are refined petroleum products for common household use, including by low-income families – will become costlier. The multiplier effects of higher prices will be noticeable as energy demand is high during peak summer. Higher prices will also be experienced by civil aviation. Air travel is set to become more expensive as aviation turbine fuel prices go up. Apart from domestic air travel, international air travel will also become costlier. Air India and other Indian carriers are already taking longer routes by avoiding the Pakistani airspace. Now, more international airlines, particularly the Middle Eastern carriers, will be rerouting their flights to avoid Israeli and Iranian airspace, leading to longer routes and higher prices. This is certainly not good news during the peak tourist season, with Indians travelling to the West, especially to holiday spots in Europe. Apart from flying costs, there are major disruptions for travel agents and tour planners as they will be forced to rework itineraries. Domestic inflation prospects in India will be aggravated by the sharp escalation in gold prices. Geopolitical volatility never fails to trigger the urge to invest in ‘safe havens’. The tendency is visible through a sharp rise in the prices of the US dollar, and gold and silver. Unless there is a quick resolution of the Iran conflict, precious metal prices will remain high into the festive season, which commences in India in about three months. Consumer pockets and household budgets will feel the squeeze from the cumulative higher costs. For much of India, high prices from exogenous shocks such as the Iran conflict, is clearly not great news in a year when the overall prospects for economic growth are more subdued than in the previous years Unlike India, China appears more insulated. China has been over-importing crude for months, building strategic reserves of more than 1 billion barrels. Its diversified supply lines from Russia, Venezuela, and the Gulf provide flexibility. However, China has significant Belt and Road investments in Iran and Iraq, including infrastructure and power plants, thereby damaging China. Taiwan Minister of Economic Affairs Kuo Jyh-huei estimated on 23 June 2025 that if Iran moves to block the Strait of Hormuz, it would cause crude oil prices to rise and subsequently impact Taiwan's fuel prices and consumer price index (CPI). Currently, less than 20 percent of Taiwan's crude oil and natural gas import pass through the Strait of Hormuz. If the strait were to be blocked, ships would be forced to take longer alternative routes, delaying deliveries, causing oil prices to rise, Kuo claims that a 10 percent increase in oil prices would raise the CPI by approximately 0.3 percent. The ripple effects are already hitting Southeast Asia. As Al Jazeera reports, energy-importing nations like Indonesia, Malaysia, and Vietnam are facing higher shipping costs and insurance surcharges. Bangladesh and Sri Lanka, already under economic strain, are especially vulnerable to energy supply delays and inflation. For Southeast Asia, this situation would result in escalating costs across various sectors. Energy-dependent industries, including manufacturing, transportation, and logistics, would face soaring operational expenses, which could reduce output and increase consumer prices. The manufacturing sector in Southeast Asia, a pivotal component of regional economic growth, would be particularly adversely affected by rising fuel costs, thereby diminishing its competitiveness in the global market. Additionally, inflationary pressures would undermine consumer purchasing power, dampening domestic consumption and subsequently slowing GDP growth throughout the region.  Iran itself would not escape unscathed. Closing the Strait would choke its own oil exports, which account for 65% of government revenue, risking economic collapse and domestic unrest for Iran. On the other hand, Europe’s demand for LNG has increased since the Russia-Ukraine Conflict, although reliance on the Middle East has fallen as Europe imported more from U.S. However, Europe remains highly sensitive to energy prices. Conversely, the U.S., as a net energy exporter, could be less impacted compared to previous oil crises when it relied more on oil imports. However, the U.S. is entering this period from a vulnerable state of increasing risks of inflation and an economic slowdown. It is estimated that a USD 10 increase in oil prices could add 0.3-0.4% to inflation, exacerbating current stagflationary risks given the surge in tariffs. This also complicates the Federal Reserve's (Fed) decision-making. Economic experts still expect the Fed to be slow to cut interest rates, as inflation risks remain larger than unemployment concerns for now.  VI. Conclusion This paper showed that the blockage of the Strait of Hormuz will increase oil & other energy prices, inflation, and shipping costs, while it reduces economic growth in the world. This paper claimed that these negative impacts will be largest in Asian countries because 84% of the crude oil and condensate and 83% of the liquefied natural gas that transported through the Strait of Hormuz went to Asian markets in 2024.

Energy & Economics
Chinese yuan on the map of South America. Trading between China and Latin American countries, economy and investment

China-Latin America Green Cooperation and the Global Development Initiative

by Cao Ting

한국어로 읽기 Leer en español In Deutsch lesen Gap اقرأ بالعربية Lire en français Читать на русском Abstract The global development initiative proposed by China aims to promote global sustainable development and has received support from many Latin American countries. At present, green cooperation between China and Latin America has achieved positive results in multiple fields such as clean energy, green agriculture, and green transportation. Latin American countries can become important partners for China to promote the Global Development Initiatives. However, in terms of green cooperation, China and Latin America also face some challenges. Both sides must strengthen consensus and achieve coordinated development in various fields. Sustainable Development and the Global Development Initiative The current international situation is turbulent and constantly changing, with a global economy that remains stagnant, while challenges such as geopolitical conflicts, climate change, and the food crisis are becoming increasingly intertwined and exacerbated. In this context, all countries around the world face the important task of promoting sustainable development and maintaining healthy economic and social growth. On September 21, 2021, Chinese President Xi Jinping officially launched the Global Development Initiative at the United Nations, outlining a path toward a new stage of global development that is balanced, coordinated, and inclusive (Ministry of Foreign Affairs of China, 2021). The Global Development Initiative is aligned with the 2030 United Nations Sustainable Development Goals and places climate change and sustainable development as key areas of cooperation, emphasizing the idea of harmonious coexistence between humanity and nature. Its goal is to promote stronger, more sustainable, and healthier global development, and to build a global community for development. The 33 countries of Latin America and the Caribbean are a fundamental part of the Global South and, in general, place great importance on sustainable development, which has allowed them to achieve notable successes in the field of sustainable cooperation. In a context of great power competition and ongoing regional conflicts, the strengthening of sustainable cooperation between China and Latin American countries presents numerous opportunities, creating ample space to jointly advance in sustainable development. The concept of a sustainable economy evolved from the idea of sustainable development, with harmony between humanity and nature at its core and the goal of achieving long-term sustainability. This approach maintains that economic growth is not an unlimited or uncontrolled process but rather must be conditioned by the ecological environment’s capacities and the resource carrying capacity. The concept of a sustainable economy emerged in the late 1980s when British environmental economist David Pearce introduced it in his work “Blueprint for a Green Economy”, published in 1989. However, it was not until the United Nations Conference on Sustainable Development, held in Rio de Janeiro in 2012, that the sustainable economy began to receive greater attention and became a central concept in global development strategies. According to the United Nations Environment Programme (UNEP), a sustainable economy is driven by public and private investments that reduce carbon emissions and pollution, improve energy and resource efficiency, and prevent the loss of biodiversity and ecosystems. A sustainable economy has always promoted development goals that integrate economic, social, and environmental aspects. This respect for the environment and nature is closely linked to traditional Chinese worldviews. Since ancient times, the Chinese have developed ideas about following the laws of nature and protecting the ecological environment. In the classical text “Yi Zhou Shu Ju Pian”, it is recorded: "During the three months of spring, no axes are used in the mountains and forests, to allow plants to grow; during the three months of summer, no nets are placed in rivers and lakes." These ideas have been a fundamental part of the spiritual thought and culture of the Chinese people for over five thousand years, and through them, they have envisioned humanity and nature as an organic and indivisible whole. They represent the basic understanding of the relationship between humans and nature in ancient Chinese agricultural society, where coexistence and mutual promotion between people and the ecological environment reflected a dialectical relationship of unity. These ideas, full of deep wisdom, constitute an essential component of China’s rich cultural tradition. Consensus Base for Green Cooperation In 2021, the Global Development Initiative, aligned with the United Nations Sustainable Development Agenda, established eight key areas of cooperation: poverty reduction, food security, industrialization, connectivity, pandemic response, development financing, climate change, and the digital economy. It also proposed key principles such as “prioritizing development,” “people-centered focus,” “universal inclusion,” “innovation-driven efforts,” “harmony between humanity and nature,” and “action-oriented approaches.” Latin American countries also place great importance on sustainable development and share numerous points of consensus with China on these principles. Currently, several countries in the region, including Peru and Colombia, have joined the “Group of Friends of the Global Development Initiative.” This shared commitment to sustainable development between China and Latin America provides an important foundation for advancing sustainable cooperation. Particularly, China and Latin American countries have broad consensus in the following areas: 1. Prioritizing national development. Both China and many Latin American countries are developing nations and consider the promotion of sustainable development a crucial goal. President Xi Jinping emphasized in the report presented at the 19th National Congress of the Communist Party of China (CPC): “The fundamental fact that our country is still and will long remain in the primary stage of socialism has not changed; our international status as the largest developing country in the world has not changed.” (Xi, 2017) China’s fundamental national situation determines that its main task is to advance along the path of socialism with Chinese characteristics and to focus its efforts on socialist construction. The Global Development Initiative also highlights “prioritizing development” as one of its core pillars. Latin America, for its part, faces the challenge of progressing in development. Although it was one of the regions in the Global South to achieve national independence and begin economic development relatively early, some Latin American countries have experienced stagnation in their economic transformation and have not managed to overcome the so-called “middle-income trap.” Affected by factors such as low global economic growth, fiscal constraints, and limited policy space, Latin America’s economy has shown a weak recovery in recent years, with some countries facing serious inflation and debt problems. Therefore, promoting sustainable development has become a top priority for governments in the region. In 2016, Latin American countries promoted the creation of the Forum of the Countries of Latin America and the Caribbean on Sustainable Development, as a regional mechanism for implementing the 2030 Agenda for Sustainable Development (ECLAC, 2016). By the end of 2023, six successful conferences had been held, and the Latin America and the Caribbean Sustainable Development Report had been published annually to assess the region’s progress in meeting the Sustainable Development Goals (SDGs). 2. Addressing welfare issues as a central task Since the 18th National Congress of the CPC, the Party’s central leadership, led by Xi Jinping, has promoted a people-centered development approach, insisting that everything should be done for the people and depend on the people, always placing them in the highest position. During the centennial celebration of the CPC’s founding, General Secretary Xi emphasized: “To learn from history and forge the future, we must unite and lead the Chinese people in a tireless struggle for a better life.” In contrast, Latin America is one of the most unequal regions in the world. The unequal distribution of wealth, along with gender and racial discrimination, are persistent issues that have been worsened by the COVID-19 pandemic and the global economic slowdown. According to data from the Economic Commission for Latin America and the Caribbean (ECLAC), in 2023 the region’s poverty rate was 29.1%, and extreme poverty was 11.4%, both slightly higher than in 2022 (29% and 11.2%, respectively) (France24, 2023). As a response, many Latin American governments — such as those in Brazil, Mexico, Chile, and Cuba — have incorporated attention to welfare issues and improving their citizens’ quality of life as key pillars in their public policy agendas. 3. Embracing inclusion and shared benefits as a guiding principle Following the end of the Cold War, the world experienced a trend toward multipolarity and continued economic globalization. However, in recent years, there has been a resurgence of protectionism in various forms, accompanied by a rise in unilateralism and hegemonic policies. These “deglobalization” practices not only fail to resolve internal problems, but also disrupt global supply chains, hinder healthy economic development, and harm the interests of countries. In response, developing nations such as China and Latin American countries advocate for multipolar development and oppose unilateralism and power politics. In December 2023, China’s Central Conference on Foreign Affairs Work emphasized the importance of inclusive and mutually beneficial economic globalization. Similarly, Latin America has maintained a diversified foreign policy and has worked toward building a new, fair, and equitable international political and economic order. Amid rising tensions among major powers, most Latin American countries have chosen not to take sides, maintaining a non-aligned policy. Moreover, countries in Latin America are increasingly focused on inclusive development both within their nations and across the region, striving to address internal development imbalances. In 2010, the Andean Development Corporation (predecessor to the Development Bank of Latin America and the Caribbean) released the “Latin America Vision Plan 2040”, which highlighted the need to strengthen economic inclusion in order to achieve truly sustainable growth (CAF, 2010). In January 2023, the Community of Latin American and Caribbean States (CELAC) Summit in Argentina approved the “Buenos Aires Declaration,” which stressed the importance of promoting inclusive development in the region and fostering inclusive dialogue with other regions (CELAC, 2023). 4. Embracing innovation as a key driver Marx pointed out that “science is also part of the productive forces” and that “the development of fixed capital shows the extent to which the general knowledge of society has become a direct productive force.” In 1988, at the National Science Conference, Deng Xiaoping declared, “science and technology are the primary productive forces.” Since the 18th CPC Congress, China has firmly pursued innovation-led development. It launched the National Innovation-Driven Development Strategy, issued the Medium- to Long-Term Science and Technology Development Plan (2021–2035), and rolled out the Technological Innovation Blueprint under the 14th Five-Year Plan. Thanks to this framework, China has made significant progress in accelerating emerging technologies such as artificial intelligence, big data, quantum communication, and blockchain. Latin American countries are also intensifying their focus on technological innovation. In 2023, CELAC’s Buenos Aires Declaration underscored the importance of innovation for enhancing regional competitiveness and job quality, while encouraging scientific exchanges among nations and subregional organizations. Furthermore, the President of Brazil, Luiz Inácio Lula da Silva, committed to increasing investment in technological development. To that end, he announced at the 28th Conference of the Parties to the United Nations Framework Convention on Climate Change an investment of approximately 21 billion reais (around 4.28 billion U.S. dollars) in sustainable economy, innovative technologies, and low-carbon economy. In the 2023 Global Innovation Index, Brazil ranked 49th out of 132 countries, improving by five positions compared to the previous year. The President of Chile, Gabriel Boric, pledged to increase public funding for research and to finance the work of universities and research institutions. In 2019, the Colombian government established the “International Mission of Wise People,” a body composed of 46 national and international academic experts to promote production diversification and automation, with the goal of doubling the share of manufacturing and agriculture in the country’s Gross Domestic Product (GDP) by 2030. The current president of Colombia, Gustavo Petro, has committed to transforming the country into a “knowledge society” and to continuing this initiative. 5. Making harmony between humans and nature a central goal Developing countries — including China and Latin American nations — prioritize climate issues and actively contribute to global climate governance. Since ancient China during the Spring and Autumn and Warring States periods, philosophical schools such as Confucianism and Taoism had already proposed concepts about the “unity between Heaven and humankind.” Similarly, Indigenous cultures in Latin America also share related cultural traditions. The Quechua peoples of Peru, Ecuador, and Bolivia promote the concept of “’Buen Vivir’” (“Good Living”), which emphasizes harmony between human society and nature. The Aymara of Peru and Bolivia, the Guaraní of Brazil, Argentina, Paraguay, and Bolivia, the Shuar of Ecuador, and the Mapuche of Chile all have similar philosophical expressions. So far in the 21st century, China and Latin American countries have intensified their focus on sustainable development. In August 2005, during a visit to Anji in China’s Zhejiang Province, Xi Jinping, then Secretary of the Communist Party of China in Zhejiang, put forward the principle that “lucid waters and lush mountains are as valuable as mountains of gold and silver,” highlighting the idea that economic growth should not be achieved at the expense of the environment. China’s Global Development Initiative includes climate change and sustainable development as key cooperation areas, aiming for stronger, healthier global progress. Simultaneously, Latin American countries value sustainability highly. Ten nations in the region have officially submitted carbon-neutrality timelines and developed emissions-reduction plans. Several governments have taken significant measures to accelerate energy transition, restore ecosystems, and enhance international cooperation. Notably, Brazil, Chile, Costa Rica, and Uruguay have made substantial strides in renewable energy: in Q1 2023, more than 90 % of Brazil’s energy came from renewables — the highest level since 2011. Progress of Green Cooperation between China and Latin America 1. High-level design for sustainable cooperation between China and Latin American countries has been continuously strengthenedAs comprehensive cooperation between China and Latin America progresses, sustainable collaboration has also become integrated into the strategic high-level planning. At the third Ministerial Meeting of the China-CELAC Forum in 2021, the "Joint Action Plan for Cooperation in Key Areas between China and CELAC Member States (2022–2024)" was adopted. This plan emphasizes the continuation of cooperation in areas such as renewable energy, new energy, civil nuclear energy, energy technology equipment, electric vehicles and their components, as well as energy-related geological and mineral resources. It also outlines the expansion of cooperation in emerging industries related to clean energy resources, support for technology transfer between companies, and the respect and protection of the natural environment. Joint declarations between China and countries such as Brazil, Mexico, and Argentina on establishing and deepening comprehensive strategic partnerships mention strengthening cooperation in areas such as climate change and clean energy. During the sixth meeting of the Sino-Brazilian High-Level Commission for Coordination and Cooperation in May 2022, the Chinese Ministry of Commerce and the Brazilian Ministry of Economy agreed to sign a Memorandum of Understanding on Promoting Investment Cooperation for Sustainable Development, aimed at promoting investment in clean and low-carbon technologies in both countries. In April 2023, during Brazilian President Luiz Inácio Lula da Silva's visit to China, the two countries issued the “China-Brazil Joint Declaration on Combating Climate Change” and signed several cooperation agreements related to the sustainable economy. For example, Article 3 mentions “expanding cooperation in new fields such as environmental protection, combating climate change, the low-carbon economy, and the digital economy,” while Article 10 notes the aim to “strengthen cooperation on environmental protection, climate change, and biodiversity loss, promote sustainable development, and accelerate the transition to a low-carbon economy.” In the same month, the “China-Brazil Joint Declaration on Combating Climate Change,” the “Memorandum of Understanding on Research and Innovation Cooperation between the Ministries of Science and Technology of China and Brazil,” and the “Memorandum of Understanding on Promoting Investment and Industrial Cooperation between China and Brazil” identified key areas of future cooperation, including sustainable infrastructure, the development of sustainable industries, renewable energy, electric vehicles, sustainable technological innovation, and green financing. 2. Clean energy cooperation has deepened The development and use of clean energy are essential means for achieving green development. In recent years, clean energy cooperation between China and Latin America has shown the following main characteristics. The scope of clean energy cooperation is becoming increasingly broad. Currently, cooperation between China and Latin America in the fields of clean energy — such as hydropower, solar energy, wind power, nuclear energy, biomass energy, and lithium batteries — has reached a certain level of breadth and depth. At the same time, both sides have also initiated cooperation efforts in emerging areas such as green hydrogen and smart energy storage. China is constantly diversifying its target countries and modes of investment in clean energy in Latin America. In 2015, China began increasing its investment in the renewable energy sector in the region. Between 2005 and 2020, China’s main investment targets in renewable energy in Latin America included countries such as Brazil, Mexico, Peru, Argentina, and Bolivia. Investments in projects, mergers and acquisitions, and greenfield investments have gone hand in hand. 3. Green cooperation in the transportation sector has yielded outstanding results. Chinese companies continue to cooperate with Latin American countries in the field of public transportation infrastructure and electric vehicles, promoting the low-carbon development of the transport sector in Latin America. First, cooperation in public transportation infrastructure is advancing. In recent years, Chinese companies have actively participated in the construction of public infrastructure such as railways, roads, and bridges in Latin American countries, aiming to promote interconnectivity and green travel across the region. Bogotá Metro Line 1, in the capital of Colombia, currently under construction with Chinese investment, is to date the largest public-private partnership (PPP) project in individual transportation infrastructure in Latin America. Second, trade in electric vehicles is developing rapidly. China’s electric vehicle industry has extensive experience in large-scale production and a relatively complete industrial supply chain, making it a new growth area in China–Latin America trade. Electric buses and cars from independent Chinese brands such as BYD, JAC, and Dongfeng are favored in Latin America due to their good quality and low price. Third, cooperation in battery and tram production is also improving. China and Latin America have also begun bold attempts in green capacity cooperation within the manufacturing sector. Currently, BYD is carrying out a range of production activities in Brazil, including the assembly of bus chassis and the production of photovoltaic modules and batteries. 4. Green agricultural cooperation is on the rise. Latin America has vast and fertile land, and agricultural cooperation is an important component of China–Latin America trade. In recent years, Chinese companies have paid increasing attention to using advanced technologies to strengthen environmental protection and actively promote the green transformation of agricultural cooperation. COFCO (‘China National Cereal, Oil & Foodstuff Corporation’) and its Brazilian partners conducted risk assessments of more than 1,700 soybean suppliers in the Amazon and Cerrado ecological zones, and mapped over 1.1 million hectares of soybean fields using remote sensing satellites, which has raised farmers' awareness of sustainable development. By the end of 2021, COFCO had achieved 100% traceability for all direct soybean purchases in Matopiba, a major soybean-producing region in Brazil. At the same time, China and several Latin American countries are promoting cooperation in green agricultural research and development. The Chinese Academy of Tropical Agricultural Sciences has established cooperative relationships with nine Latin American countries, including Colombia, Panama, Ecuador, and Costa Rica. It has achieved progress in exchange and cooperation in areas such as the innovative use and protection of germplasm resources, efficient transformation and comprehensive utilization of biomass energy, green pest and disease prevention and control technologies, and efficient cultivation techniques. 5. Cooperation on green financing plays an important bridging role. The Global Development and South-South Cooperation Fund and the China-United Nations Peace and Development Fund are key financial platforms through which China supports project cooperation under the Global Development Initiative. In addition to the above-mentioned platforms, current green financial instruments between China and Latin America include the Asian Infrastructure Investment Bank, the China–Latin America Cooperation Fund, the China–Latin America Development Finance Cooperation Mechanism, and subsidies provided by China’s Ministry of Commerce and Ministry of Foreign Affairs. Currently, all three financing projects of the Asian Infrastructure Investment Bank in Brazil are related to the green economy. Challenges facing Sino–Latin American green cooperation Although green cooperation between China and Latin America has gradually achieved results and presents many development opportunities, the risks and challenges of cooperation should not be ignored. Most Latin Americans expect that foreign cooperation will promote social well-being, eliminate poverty, and reduce inequality in their countries. They place great importance on the social benefits of projects and pay close attention to the environmental impact of projects on local ecosystems. Currently, the process of extracting lithium from brine places high demands on water resources and carries the risk of air and water pollution. As a result, lithium mining has also faced opposition from Indigenous communities in some Latin American countries. In 2023, Indigenous peoples from Argentina’s Jujuy Province staged several protests against the exploitation of a lithium mine (Reventós, 2023). To reduce pollution in lithium extraction, further scientific and technological research is needed. The integration of Chinese companies into Latin America also faces many obstacles. The official languages of most Latin American countries are Spanish and Portuguese, which are deeply influenced by European and U.S. cultures. In addition to geographical distance, there is limited mutual understanding between the peoples of China and Latin America, and transportation and logistics costs are high. Most Chinese companies lack personnel fluent in Spanish or Portuguese and familiar with local laws and regulations. Currently, the U.S. government continues to view China as a strategic competitor. Latin America has also become a battleground for strategic competition between China and the United States. The U.S. has increasingly turned its attention to China’s cooperation with Latin American countries. In 2019, the U.S. House Committee on Foreign Affairs published an article stating that “China’s green investment in Latin America cannot offset local environmental damage” (Cote-Muñoz, 2019). In general, green cooperation between China and Latin America will face a more complex environment in the future. Final considerations In recent years, China has put forward the Global Development Initiative to promote international cooperation for sustainable development. Latin America, one of the regions with the most developing countries in the world, actively promotes the implementation of the Sustainable Development Agenda and has a solid green economic foundation. In this sense, the region can be an important partner for China in achieving the goals of the 2030 Agenda and building a shared future for humanity. China must continue to build consensus on development priorities with Latin American countries, plan key areas of cooperation according to their conditions and needs, promote connections between governments, businesses, universities, and media in China and Latin America, and jointly advance the green cooperation to a new level. China and Latin America have achieved multidisciplinary coverage in green cooperation. It is necessary to further improve the quality of cooperation in the future and achieve coordinated development across various sectors. For example, in the long term, the development of renewable energy will require greater energy storage capacity and wider electric grid coverage. Additionally, Chinese companies need to integrate more into local societies and generate greater social benefits while ensuring economic returns. They can strengthen cooperation with Latin American companies in order to quickly become familiar with local laws, regulations, and market conditions. Furthermore, more research — including environmental assessments and social consultations — should be conducted before launching projects. References CAF (2010). "Corporación Andina de Fomento, Visión para América Latina 2040 Hacia una sociedad más incluyente y próspera". https://scioteca.caf.com/bitstream/handle/123456789/496/latinamerica_2040_summary_esp.pdf?sequence=1&isAllowed=yCELAC (2023). "Declaración de Buenos Aires". https://www.cancilleria.gob.ar/userfiles/prensa/declaracion_ de_buenos_aires_-_version_final.pdf CEPAL (2016). "El Foro de los Países de América Latina y el Caribe sobre el Desarrollo Sostenible y el Seguimiento Regional de la Agenda 2030". https://www.cepal.org/es/temas/agenda-2030-desarrollo-sostenible/ foro-paises-america-latina-caribe-desarrollo-sostenible-seguimiento-regional-la-agenda-2030Cote-Muñoz, N. (2019). "China's Green Investments Won't Undo Its Environmental Damage to Latin America". Council on Foreign Relations. https://www.cfr.org/blog/chinas-green-investments-wont-undo-its-environmental-damage-latin-americaFrance24 (2023). "Tasa de pobreza se mantiene en 29 % en América Latina en 2023". https://www.france24.com/es/minuto-a-minuto/20231125-tasa-de-pobreza-se-mantiene-en-29-en-am%C3%A9rica-latina-en-2023-dice-cepalMinistry of Foreign Affairs of China (2021). "Global Development Initiative-Building on 2030 SDGs for Stronger, Greener and Healthier Global Development". https://www.mfa.gov.cn/eng/zy/jj/GDI_140002/wj/202406/ P020240606606193448267.pdfReventós, B. y N. Fabre (2023). "Los grupos indígenas en Argentina que se oponen a la extracción del litio". BBC. https://www.bbc.com/mundo/articles/cevzgv0elp9o Cuadernos de Nuestra América. No. 014 | Nueva Época 2025, Centro de Investigaciones de Política Internacional (CIPI). Under CC BY-NC 4.0

Energy & Economics
Climate migration vector illustration word cloud isolated on a white background.

Pathways to respond to climate change, forced displacement, and conflict challenges

by Edoardo Borgomeo , Anders Jägerskog

한국어로 읽기 Leer en español In Deutsch lesen Gap اقرأ بالعربية Lire en français Читать на русском Abstract The collision of climate impacts with forced displacement and conflict renders efforts to promote peace and development particularly challenging. Most of the academic literature to date has focused on exploring and predicting causal links between climate change, conflict, and forced displacement. Much less attention has been paid to the need to inform actual policy interventions and responses, particularly to support climate-resilient development. Here, we address this gap and develop a decision framework to inform long-term climate responses in contexts affected by conflict and forced displacement. Building upon previous World Bank policy reports and the authors’ professional experience, we suggest that a focus on decision pathways can help inform a long-term, development response to conflict, forced displacement, and climate challenges. Pathways capture the sequence of interventions that are required to reduce climate risks in contexts affected by conflict and forced displacement. They also offer an opportunity for aligning climate change adaptation interventions, such as water storage or flood embankments, with peacebuilding and stabilization initiatives. Case studies from Lebanon and South Sudan are discussed to illustrate the pathways approach to climate adaptation in contexts affected by conflict and forced displacement. 1. Introduction Research and policy analysis on climate change, migration, and conflict have expanded significantly in recent years (Swain et al., 2023; Von Uexkull and Buhaug, 2021). Attention has been mostly devoted to answering questions of causality, trying to unpack the complex causal linkages between these issues (e.g., Abel et al., 2019), and viewing climate as a “driver” of security risks. While research on causality has yielded important insights into some of the potential channels through which climate change might affect human mobility and conflict, it has also been criticized for its lack of nuance and context sensitivity (Brzoska and Fröhlich, 2016). Moreover, it has led to some statements about conflict–climate relationships, especially in the context of the Syrian civil war, that largely fail to account for broader political economy considerations and are, as such, unhelpful from a policy perspective and unwarranted from a scientific perspective (Daoudy, 2020; de Châtel, 2014; Fröhlich, 2016). Here, we argue that rather than attempting to quantify and model causal linkages between climate, migration, and conflict, research should focus more on questions of policy and intervention design. This will address urgent needs to anticipate people’s movements and to find lasting solutions to displacement caused by conflict- and climate-related factors (African Union and International Organisation for Migration, 2024). A focus on solutions and policy design will also support governments in conflict-affected areas in adopting a position on climate security and in prioritizing scarce development resources to address climate security risks (International Crisis Group, 2025). A focus on policy and intervention design requires understanding two sets of interactions. First, the impacts of climate risks—encompassing hazard, exposure, and vulnerability—on efforts to address protracted conflict and migration. For example, there is little knowledge of the drought and flood hazards faced by forcibly displaced populations living in refugee camps under high-end climate change scenarios, or of the effects that short-term humanitarian responses to flood hazards might have on exacerbating long-term flood exposure in conflict-affected areas. Second, the impacts of efforts to advance climate change adaptation or mitigation on forced displacement and conflict risks. For example, there is little knowledge of the potential conflict and forced displacement risks arising from investments in climate infrastructure (e.g., flood embankments, irrigation) in certain contexts. This perspective focuses on these interactions and presents a decision framework for evaluating options to address forced displacement and conflict challenges while not exacerbating the climate risks faced by populations. The perspective specifically focuses on the role of water development interventions in influencing interactions between forced displacement responses and climate risks. Forced displacement is interpreted as situations where individuals or communities leave or flee their homes due to conflict, violence, persecution, and human rights violations. 2. Promoting climate-resilient development in situations of protracted forced displacement2.1. Decision points and path dependencies shape success in development responses When responding to protracted forced displacement situations, policymakers will likely face trade-offs between short-term uncoordinated measures to respond to immediate risks (e.g., lack of drinking water supplies, temporary flood embankments) and long-term measures needed to address structural issues (e.g., provision of sustainable water services, land-use zoning to reduce flood exposure) (Borgomeo et al. 2021). These trade-offs are time-specific, meaning that they can create path dependencies and lock-in, thus influencing countries’ ability to achieve stability and climate-resilient development over the long term. Hence, at different stages of a protracted forced displacement crisis, policymakers need to be cognizant that their efforts can undermine or support long-term policy objectives such as climate resilience and peace. Building upon Borgomeo et al. (2021), we propose a framework (Figure 1) that identifies three decision points at which specific trade-offs shape future development and climate resilience paths: • Prevention and pre-crisis coordination and planning• Responding to protracted forced displacement• Preparing for recovery and return  Figure 1. Decision points and impact of climate and water-related events at various stages of conflict and forced displacement cycle. Adapted from Lund (1996). The framework adapts Lund’s peace and conflict cycle (Lund, 1996) to the specific case of climate change, conflict, and forced displacement responses. The bell-shaped curve in Figure 1 is a stylized representation of the potential course of a complex forced displacement and conflict crisis, with the vertical axis representing the intensity of the crisis, and the horizontal axis representing time. Different conflict and forced displacement crises will follow different curves: responses can prevent or reduce the risks of the crisis escalating further. Moreover, climate-related events might make addressing the crisis more challenging, exacerbating risks of armed violence, or perpetuating forced displacement cycles. At each of the decision points in Figure 1, policymakers need to explore trade-offs between addressing short-term needs and achieving longer-term development. Policymakers confront a series of choices through time; their choices will determine a “pathway” and the type of outcomes they can achieve. Figure 2 shows three examples of pathways that emerge (from left to right) depending on choices made at each of the three decision points. While timing and responses will be context-specific, these decision points are likely to arise in any protracted forced displacement situation, making the framework shown in Figures 1 and 2 generally applicable in different contexts.  Figure 2. Decision points shape three example pathways to respond to climate change, forced displacement, and conflict challenges. Prevention and pre-crisis coordination and planning At Decision point 1, in a situation where the crisis has not yet materialized, building preparedness through coordination between development, humanitarian, and security actors is essential. Development actors have access to ministries and service providers and should ensure that these public sector entities that are tasked with providing climate-related information (e.g., hydrometeorological services), managing water, and delivering services establish functional links with humanitarian and security actors (World Bank, ICRC and UNICEF 2021). Development actors should promote and support data collection and information-sharing protocols to build a common understanding across parties involved in climate-related sectors in fragile contexts. For example, a joint understanding of water resource availability and safe deployable outputs (i.e., the quantity of water that can be consumed without compromising it through depletion or salinization) and of water governance structures can ensure that humanitarian actors have a better understanding of when and where water resources might be compromised or depleted during a crisis. This joint understanding also involves mapping critical interconnected infrastructure systems, notably energy, digital, and water infrastructure, and ensuring that there are no single points of failure that—if targeted—can bring down the entire system (Weinthal and Sowers, 2020). Similarly, joint understanding should be developed in the area of flood and drought hazards, to prevent any potential crisis responses from further exacerbating exposure to climate impacts, for example, by locating refugee camps in flood-prone areas. Response to protracted forced displacement During a protracted forced displacement crisis, policymakers face significant trade-offs between short-term responses to meet immediate needs and long-term measures that address underlying sector weaknesses (Figure 2, decision point 2). Overreliance on temporary solutions provided by humanitarian actors and private sector providers can undermine long-term institutional ability to provide sector oversight, understand climate risks, and deliver services. Moreover, it might paradoxically exacerbate vulnerability and exposure to climate hazards leading to lock-in, where temporary responses perpetuate, delay, or prevent a transition to more sustainable and long-term adaptation to climate shocks (Pathway 1 in Figure 2). Two examples help elucidate the type of trade-offs that might emerge at decision point 2. In the case of water service delivery, private water vendors might be interested in maintaining control of water distribution even after the crisis ends, complicating the transition to a sustainable and affordable water delivery model. They might also avoid protecting water sources from pollution and overexploitation or promote the drilling of new wells, contributing to an uncontrolled expansion of unlicensed users and exacerbating vulnerability to droughts under climate change. This pathway has been observed in Yemen, for example, where most urban residents are supplied by privately operated tanker trucks, with ensuing issues for affordability, public health, sustainability of water use, and long-term resilience to drought (Abu-Lohom et al. 2018). In the case of flood risk management for forcibly displaced communities, short-term responses can have profound implications for future climate resilience and vulnerability. Forcibly displaced communities often relocate to marginal lands exposed to water-related hazards, such as landslides and floods. This pattern has been observed in several contexts, such as Colombia (Few et al., 2021), Sierra Leone (Gbanie et al., 2018), and South Sudan (Borgomeo et al., 2023). Once the forced displacement crisis and conflict end, these communities are likely to experience heightened climate impacts because they settle in areas highly exposed to floods and landslides. These communities might also receive inequitable benefits from recovery efforts, as settlements on marginal lands are often considered illegal and therefore not serviced by infrastructure. In turn, this might make historical grievances resurge, heightening the risk of relapse into conflict and hindering efforts to build government legitimacy and trust. Although sustainability of use, resource protection, and land use planning might not seem like priorities in the short term, they are key tenets of a development approach to the forced displacement crisis at decision point 2. Often, short-term responses, such as drilling a well, can have long-term impacts on the sustainability of both short- and long-term interventions by inevitably depleting or contaminating water resources. Similarly, short-term responses to settlement issues can also aggravate exposure to climate impacts. A development approach focused on addressing urgent needs while responding to structural challenges is better able to achieve long-term climate resilience and stability outcomes. In the context of water service delivery, this approach entails rationalizing the use of existing water resources and prioritizing demand-side solutions (e.g., reducing water use) to avoid placing additional pressures on already strained supplies (Borgomeo et al. 2021). In the context of flood risk management, this entails using integrated gray and green solutions to respond to flood risks and adopting floodplain zoning strategies. A longer-term approach might also combine short-term humanitarian actions with interventions that support the business continuity of water service providers and water resource management agencies with one-off capital injections or specific staff support programs to prevent brain drain. Although a development approach helps to address water sector issues in host countries, it might be challenging to adopt in practice. In already politically fragile and financially stretched contexts, governments might not be willing or able to provide water services or protection to forcibly displaced communities. In turn, this leaves humanitarian actors or unregulated private vendors to meet the immediate needs of vulnerable populations. However, these short-term responses might be counterproductive in the long run because they might create patterns of inclusion and exclusion between host communities and forcibly displaced populations, making integration and cohesion harder to achieve (Pathway 2 in Figure 2). When host communities perceive that forcibly displaced populations are receiving better services through humanitarian actors, this can fuel grievances against the forcibly displaced populations and the state. While temporary solutions might offer a relatively easier way to respond to forced displacement, they can also lead to lock-in and foreclose alternatives in the long term for host countries. The different responses to the Syrian refugee crisis observed in Jordan, Lebanon, and Türkiye demonstrate this problem: the water security of forcibly displaced populations and their host communities varies significantly depending on host countries’ willingness and ability to adopt a long-term development approach to the crisis rather than short-term temporary solutions. Preparation for recovery and return A third decision point relates to a post-conflict situation of recovery, peacebuilding, and potential return of the forcibly displaced. At this point, water- and climate-related interventions need to be integrated within broader plans for reconciliation and for extending basic services to camps and informal settlements, rehabilitating infrastructure, and expanding the capacity of existing urban water systems to respond to higher demand (Pathway 3 in Figure 2). For example, a higher presence of refugees in urban areas can increase water demands, highlighting the need to upgrade and in some cases increase the capacity of existing supply and sanitation infrastructure. This demand growth is different from normal surges in demand for water services, which are typically short-lived increases in demand in response to weather conditions or public health measures (e.g., COVID-19 lockdowns). In contrast to these demand surges, forced displacement causes long-lasting increases in service demand, thus requiring a master plan and long-term response. For water utilities and service providers, restoring and expanding services will be an opportunity to improve service quality for their constituents and customers while avoiding the promotion of exclusionary practices that benefit factional interests and that can contribute to fragility (Sadoff et al 2017). A development approach to recovery and return should also consider a regional perspective. Following a protracted forced displacement crisis, new economic realities and incentives might arise. In some situations, the forcibly displaced populations might not intend to go back to their place of origin (as reported by some Syrian refugees) (IPA, 2020). In this case, it might make more economic sense for development actors to prioritize the use of scarce financial resources to support the expansion of water infrastructure in the host country rather than to rebuild infrastructure in the place of origin. A regional perspective also helps to identify opportunities to share benefits from transboundary waters and identify regionally beneficial approaches to water management. 3. Insights from balancing and sequencing development interventions to respond to climate, conflict, and forced displacement challengesLebanon: addressing the needs of the forcibly displaced and their host communities in situations of crisis At the height of the Syrian crisis in 2014, the Lebanese authorities estimated that around 1.5 million Syrian refugees had entered Lebanon, causing the country’s population to increase by almost 25% (World Bank 2018). Lebanon chose not to establish refugee camps, and the majority of the Syrians settled amid Lebanese communities in urban and rural areas. The sudden increase in demand for services placed significant pressure upon already limited and poorly performing infrastructure. In 2014, the Ministry of Environment estimated that domestic water demand had increased by 43 million m3 to 70 million m3 a year, which corresponds to an increase in overall national water demand of between 8% and 12% (Ministry of Environment of Lebanon 2014). This crisis took place against a backdrop of growing water-related hazards including increasing drought hazards because of climate change, and also chronic water scarcity caused by decades of underinvestment in water systems and soaring water demands (World Bank 2017). Faced with this situation of crisis (decision point 2 above), the Republic of Lebanon, with support from the World Bank, adopted a long-term response strategy that intervened in host communities in a way that benefited both hosts and refugees. Rather than creating a parallel system of assistance only for the forcibly displaced, the Lebanon Municipal Services Emergency Project targeted both the host community and Syrian refugees through infrastructure and social interventions (World Bank 2018). Community social interventions were urgent and indispensable to complement water and energy service delivery as well as to support the long-term objective of enhancing social cohesion and living conditions. Based on consultations, communities prioritized 12 social interventions around five themes—environmental awareness, employment training, skills training, health, and social cohesion—for both Lebanese and Syrians, with a focus on women, youth, and children (World Bank 2018). Infrastructure interventions addressed urgent community priorities which were also identified through community consultations involving both forcibly displaced and host communities. This included installing solar pumps to improve the reliability of water supplies and improve the ability to meet growing water demand. This had the additional advantage of reducing electricity costs for the financially weak water utility. South Sudan: water as an enabler of durable solutions for the forcibly displaced South Sudan is the main source of refugees in Sub-Saharan Africa and hosts one of the world’s largest internally displaced populations (IDPs) (UNHCR, 2025). The country presents a multilayered mix of IDPs, asylum seekers, refugees, returnees, stateless persons, and persons at risk of statelessness. South Sudan is also among the most vulnerable countries to climate change, ranking as the second most vulnerable country to natural hazards such as floods and droughts in the world, according to the 2024 INFORM Risk Index. Forced displacement was traditionally associated with armed conflict, but in recent years water-related disasters, notably floods, have triggered large-scale internal and cross-border displacement (UNHCR, 2021). These sobering statistics position South Sudan as one of the global hotspots where urgent responses at the nexus of climate change, forced displacement, and conflict are needed. At the time of writing, South Sudan confronts a situation of relative stability and an urgent need to address the needs of IDPs and returnees (decision point 3). Since 2018, the country has faced unprecedented floods, which have contributed to protracted cycles of displacement. These floods are directly linked to rainfall patterns in the African Great Lakes region, where the Bahr el Jebel (White Nile) originates, and in the Ethiopian Highlands. Because of South Sudan’s very flat landscape and impermeable soils, flooding persists for a long time, posing long-term challenges for climate adaptation. The country also faces a water supply and sanitation crisis, with about 60% of the population using unimproved sources at risk from contamination (Borgomeo et al., 2023). Decision-makers face stark trade-offs between temporary fixes and long-term, durable solutions that lay the foundation for sustainable service delivery and flood risk management over the long term. In the context of South Sudan, the provision of water services is an area where the Government has identified the importance of transitioning towards long-term solutions instead of just relying on temporary humanitarian actions. This provides an example of how responses to decision point 3 can help countries gradually improve climate resilience and water security while addressing the urgent needs of the forcibly displaced. The provision of clean drinking water in areas of return or local integration is one of the Six Priority Areas under the South Sudan 2021 Durable Solutions Strategy, highlighting that water availability is a governing factor in the government’s response to forced displacement. The strategy recognizes that without access to water supply and sanitation services, local integration processes, voluntary returns, and relocations cannot materialize. Durable solutions are achieved when individuals no longer have specific assistance or protection needs linked to displacement and represent the closure of the displacement cycle. The Government of South Sudan and a range of humanitarian partners developed a WASH Transition Strategy for Former Protection of Civilian (PoC) Sites, to ensure that the responsibility for maintaining and operating WASH facilities is progressively transferred to local populations and the responsible local authorities. The WASH Transition Strategy for Former PoC Sites, through the WASH exPoC Task Force, is contributing to building the capacity of the responsible local authorities who should become responsible and accountable for ensuring regular services to eventually promote suitable solutions for IDPs by creating service conditions conducive to durable solutions (returns and local integration) (WASH Cluster South Sudan, 2021). In several locations, multisectoral plans are being developed at the site level, including transition plans for security, services, and community engagement (WASH Cluster South Sudan, 2022). The challenge of providing durable solutions to forced displacement in South Sudan is extremely complex: because the security conditions in multiple parts of the country remain fragile and the impacts of climate change are increasing. The country’s efforts to advance durable solutions in terms of water services show that it is indeed possible to take a long-term view of forced displacement as one that is complementary to humanitarian efforts; focuses on medium-term socioeconomic aspects; is government-led and places particular attention on institutions and policies. While water service delivery has been included in the Government’s durable solutions plan, the issue of flood risks under climate change remains largely unaddressed, posing significant challenges to break the forced displacement cycle and build climate resilience in the country. The scale of the flood challenge and the risk of regional spillovers call for more regional and international attention to climate security risks in South Sudan (International Crisis Group, 2025). Research and policy should focus on identifying opportunities to link climate adaptation interventions to broader reconciliation and stabilization efforts at local and national levels. 4. Discussion and conclusions This perspective focuses on the design of interventions to respond to complex challenges at the nexus of climate change, migration, and conflict. It suggests that sequencing and trade-offs need to be considered when implementing humanitarian interventions, to avoid perpetuating existing vulnerabilities or delaying opportunities to pursue climate-resilient development. This perspective also highlights that development and humanitarian actors should work more closely together to align perspectives and create a level of readiness for when a crisis occurs. The perspective identifies three specific decision points that can help focus planning and interactions among the different stakeholders from the humanitarian, security, and development sectors involved in crisis response. Frameworks based on pathways and decision points, such as the one presented here, have been found valuable in guiding decision-making and design of interventions in the field of water security (Garrick and Hall, 2014) and climate adaptation under uncertainty (Haasnoot et al., 2024). However, their application for intervention design and implementation at the humanitarian-development nexus is limited and likely to be affected by stakeholder cultures and objectives. Moreover, a focus on decision points and pathways requires capabilities to conduct monitoring and options identification and assessment which are often absent in contexts characterized by fragility and conflict. Moving forward, research should focus on developing models and frameworks that can help design and monitor effective policy responses at the climate change, migration, and conflict nexus. First, research should attempt to develop typologies of climate adaptation and water interventions to address conflict and forced migration challenges, including an assessment of their potential to increase risks of conflict and violence (see Gilmore and Buhaug, 2021 for an example in relation to climate mitigation policies). Typologies will help design interventions and compare experiences across different geographies and settings. Second, research should focus less on ex-post analysis or future predictions and concentrate more on careful monitoring and evaluation of ongoing climate change adaptation and conflict-resolution and peacebuilding interventions. This will help inform the early stages of policy implementation (including options assessment and monitoring strategies mentioned above), support learning, and help with early identification of risks of relapse into conflict. Finally, analysts have highlighted several challenges related to access to climate finance in contexts affected by conflict and forced displacement (Cao et al., 2021; Meijer and Ahmad 2024). Research should examine opportunities for climate finance to support the transition from humanitarian to long-term development approaches in a context characterized by fragility and conflict. This includes creating frameworks to evaluate project contributions to financiers’ objectives, as well as improved evidence on the need for urgent climate adaptation among conflict and forcibly displaced communities worldwide. Acknowledgments Findings, interpretations, and conclusions expressed in this paper are entirely those of the authors. They do not necessarily represent the views of the International Bank for Reconstruction and Development/World Bank and its affiliated organizations, or those of the Executive Directors of the World Bank or the governments they represent, or of the Global Water Security and Sanitation Partnership. Funding The author(s) disclosed receipt of the following financial support for the research, authorship, and/or publication of this article: This article is partly derived from Chapter 4 of the World Bank report Ebb and Flow, Volume 2: Water in the Shadow of Conflict in the Middle East and North Africa. 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