Article
Transitioning to Renewable Energy in Small Island Developing States: Current Status, Opportunities, Challenges, and Policy Pathways for a Sustainable Future
Cleveland S. Julien 1,2 W.M. Dimuthu Nilmini Wijeyaratne 3,*![]()
1 University College of the Cayman Islands, Georgetown,Grand Cayman, KY1-1107
2 CultureAi Consulting, Gaithersburg, MD 20877, USA
3 Department of Zoology and Environmental Management, Faculty of Science, University of Kelaniya 11600, Sri Lanka
* Correspondence: dimuthu.wijeyaratne@kln.ac.lk
Abstract: Small Island Developing States (SIDS) face disproportionately high energy costs due to heavy reliance on imported fossil fuels for energy and transportation. This dependency exacerbates economic instability, undermines environmental sustainability, and heightens vulnerability to climate change impacts. However, SIDS’ geographic isolation and abundant natural resources including solar, wind, and geothermal energy, position them to leverage renewables for energy security. This study conducts a systematic literature review to analyze opportunities, challenges, policy responses, and case studies related to renewable transitions in SIDS. Findings reveal that the gradual adoption of renewables has reduced fossil fuel dependency and stabilized energy costs by insulating SIDS from volatile global markets. Renewables also curb carbon emissions and enhance climate resilience, as demonstrated by solar microgrids in Tuvalu and wind-diesel hybrids in Cape Verde. However, transitions are hindered by high upfront costs, land scarcity, and fragmented grids. The study recommends aligning SIDS’ energy policies with global climate targets (e.g., the Paris Agreement), deploying decentralized systems tailored to island geographies, and strengthening international finance mechanisms to address equity gaps. Prioritizing localized energy audits, community engagement, and regional partnerships could further accelerate progress toward a sustainable energy future.
Keywords: climate change; energy security; decentralized energy systems; climate resilience
https://doi.org/10.59711/jims.12.110028
References
1. Havea, P.H.; Su, B.; Liu, C.; Kundzewicz, Z.W.; Wang, Y.; Wang, G.; Jing, C.; Jiang, H.; Yang, F.; Mata’afa, F.N.; et al. Wind and Solar Energy in Small Island Developing States for Mitigating Global Climate Change. iScience 2024, 27, doi:10.1016/j.isci.2024.111062. [Crossref]
2. Betzold, C. Fuelling the Pacific: Aid for Renewable Energy across Pacific Island Countries. Renew. Sustain. Energy Rev. 2016, 58, 311–318, doi:10.1016/j.rser.2015.12.156. [Crossref]
3. Lucas, H.; Fifita, S.; Talab, I.; Marschel, C.; Cabeza, L.F. Critical Challenges and Capacity Building Needs for Renewable Energy Deployment in Pacific Small Island Developing States (Pacific SIDS). Renew. Energy 2017, 107, 42–52, doi:10.1016/j.renene.2017.01.029. [Crossref]
4. Surroop, D.; Raghoo, P.; Bundhoo, Z.M.A. Comparison of Energy Systems in Small Island Developing States. Util. Policy 2018, 54, 46–54, doi:10.1016/j.jup.2018.07.006. [Crossref]
5. Thomson, H.; Simcock, N.; Bouzarovski, S.; Petrova, S. Energy Poverty and Indoor Cooling: An Overlooked Issue in Europe. Energy Build. 2019, 196, 21–29, doi:10.1016/j.enbuild.2019.05.014. [Crossref]
6. Kuang, Y.; Zhang, Y.; Zhou, B.; Li, C.; Cao, Y.; Li, L.; Zeng, L. A Review of Renewable Energy Utilization in Islands. Renew. Sustain. Energy Rev. 2016, 59, 504–513, doi:10.1016/j.rser.2016.01.014. [Crossref]
7. Dornan, M.; Shah, K.U. Energy Policy, Aid, and the Development of Renewable Energy Resources in Small Island Developing States. Energy Policy 2016, 98, 759–767, doi:10.1016/j.enpol.2016.05.035. [Crossref]
8. Qin, L.; Chen, W.; Sun, L. Impact of Energy Poverty on Household Quality of Life — Based on Chinese Household Survey Panel Data. J. Clean. Prod. 2022, 366, doi:10.1016/j.jclepro.2022.132943. [Crossref]
9. Xu, W.; Xie, B.; Lou, B.; Wang, W.; Wang, Y. Assessing the Effect of Energy Poverty on the Mental and Physical Health in China—Evidence from China Family Panel Studies. Front. Energy Res. 2022, 10, 944415, doi:10.3389/fenrg.2022.944415. [Crossref]
10. Jiang, T.; He, X.; Su, B.; Havea, P.H.; Wei, K.; Kundzewicz, Z.W.; Liu, D. COP 28: Challenge of Coping with Climate Crisis. The Innovation 2024, 5, 100559, doi:10.1016/j.xinn.2023.100559. [Crossref]
11. Wang, Z.; Amin, A.; Chandio, A.A.; Shah, A.H.; Ullah, M.I. Dynamical Assessment of Multi-Dimensional Energy Poverty at the National and Sub-National Levels in Pakistan. Energy Effic. 2024, 17, 18, doi:10.1007/s12053-024-10190-4. [Crossref]
12. Page, M.J.; Moher, D.; Bossuyt, P.M.; Boutron, I.; Hoffmann, T.C.; Mulrow, C.D.; Shamseer, L.; Tetzlaff, J.M.; Akl, E.A.; Brennan, S.E.; et al. PRISMA 2020 Explanation and Elaboration: Updated Guidance and Exemplars for Reporting Systematic Reviews. BMJ 2021, doi:10.1136/bmj.n160. [Crossref]
13. Page, M.J.; McKenzie, J.E.; Bossuyt, P.M.; Boutron, I.; Hoffmann, T.C.; Mulrow, C.D.; Shamseer, L.; Tetzlaff, J.M.; Akl, E.A.; Brennan, S.E.; et al. The PRISMA 2020 Statement: An Updated Guideline for Reporting Systematic Reviews. PLOS Med. 2021, 18, doi:10.1371/journal.pmed.1003583. [Crossref]
14. Donthu, N.; Kumar, S.; Mukherjee, D.; Pandey, N.; Lim, W.M. How to Conduct a Bibliometric Analysis: An Overview and Guidelines. J. Bus. Res. 2021, 133, 285–296, doi:10.1016/j.jbusres.2021.04.070. [Crossref]
15. Gordon-Strachan, G.M.; Parker, S.Y.; Harewood, H.C.; Méndez-Lázaro, P.A.; Saketa, S.T.; Parchment, K.F.; Walawender, M.; Abdulkadri, A.O.; Beggs, P.J.; Buss, D.F.; et al. The 2024 Small Island Developing States Report of the Lancet Countdown on Health and Climate Change. Lancet Glob. Health 2025, 13, e146–e166, doi:10.1016/S2214-109X(24)00421-2. [Crossref]
16. IRENA Renewable Energy Statistics 2025; 2025; ISBN 978-1-5231-6482-0. [Website]
17. Scandurra, G.; Romano, A.A.; Ronghi, M.; Carfora, A. On the Vulnerability of Small Island Developing States: A Dynamic Analysis. Ecol. Indic. 2018, 84, 382–392, doi:10.1016/j.ecolind.2017.09.016. [Crossref]
18. Keiner, D.; Salcedo-Puerto, O.; Immonen, E.; Van Sark, W.G.J.H.M.; Nizam, Y.; Shadiya, F.; Duval, J.; Delahaye, T.; Gulagi, A.; Breyer, C. Powering an Island Energy System by Offshore Floating Technologies towards 100% Renewables: A Case for the Maldives. Appl. Energy 2022, 308, 118360, doi:10.1016/j.apenergy.2021.118360. [Crossref]
19. Ali, I.; Shafiullah, G.; Urmee, T. A Preliminary Feasibility of Roof-Mounted Solar PV Systems in the Maldives. Renew. Sustain. Energy Rev. 2018, 83, 18–32, doi:10.1016/j.rser.2017.10.019. [Crossref]
20. Rogers, T. Development of Innovation Systems for Small Island States: A Functional Analysis of the Barbados Solar Water Heater Industry. Energy Sustain. Dev. 2016, 31, 143–151, doi:10.1016/j.esd.2016.01.002. [Crossref]
21. Bakhuis, J. Analysis of Solar Energy on Caribbean Small Island Developing States (SIDS): A Case Study of Curaçao, Available online: https://thesis.eur.nl/pub/50871/ (accessed on 19 January 2025).
22. IRENA Renewables Readiness Assessment: Antigua and Barbuda Available online: https://www.irena.org/publications/2016/Nov/Renewables-Readiness-Assessment-Antigua-and-Barbuda (accessed on 19 January 2025).
23. Golroodbari, S.Z.; Van Sark, W. Simulation of Performance Differences between Offshore and Land‐based Photovoltaic Systems. Prog. Photovolt. Res. Appl. 2020, 28, 873–886, doi:10.1002/pip.3276. [Crossref]
24. Liu, H.; Krishna, V.; Lun Leung, J.; Reindl, T.; Zhao, L. Field Experience and Performance Analysis of Floating PV Technologies in the Tropics. Prog. Photovolt. Res. Appl. 2018, 26, 957–967, doi:10.1002/pip.3039. [Crossref]
25. Trapani, K.; Millar, D.L. Proposing Offshore Photovoltaic (PV) Technology to the Energy Mix of the Maltese Islands. Energy Convers. Manag. 2013, 67, 18–26, doi:10.1016/j.enconman.2012.10.022. [Crossref]
26. Rogers, T.; Ashtine, M.; Koon Koon, R.; Atherley-Ikechi, M. Onshore Wind Energy Potential for Small Island Developing States: Findings and Recommendations from Barbados. Energy Sustain. Dev. 2019, 52, 116–127, doi:10.1016/j.esd.2019.08.002. [Crossref]
27. Qing, X. Statistical Analysis of Wind Energy Characteristics in Santiago Island, Cape Verde. Renew. Energy 2018, 115, 448–461, doi:10.1016/j.renene.2017.08.077. [Crossref]
28. Prasad, R.D.; Raturi, A. Prospects of Sustainable Biomass-Based Power Generation in a Small Island Country. J. Clean. Prod. 2021, 318, doi:10.1016/j.jclepro.2021.128519. [Crossref]
29. Singh, S.R. An Assessment of the Hydro Potential for Viti Levu, Fiji Using GIS Techniques. In Translating the Paris Agreement into Action in the Pacific; Singh, A., Ed.; Advances in Global Change Research; Springer International Publishing. 2020, 68, 101–127, doi:10.1007/978-3-030-30211-5_5. [Crossref]
30. Birbal, P.Y.; Azamathulla, H.M. Modelling a Low-Head Seawater-Pumped Hydro Storage System’s Impeller for Energy Production within a Small Island Developing State. Water Supply 2024, 24, 3862–3880, doi:10.2166/ws.2024.231. [Crossref]
31. Pradhan, A.; Marence, M.; Franca, M.J. The Adoption of Seawater Pump Storage Hydropower Systems Increases the Share of Renewable Energy Production in Small Island Developing States. Renew. Energy 2021, 177, 448–460, doi:10.1016/j.renene.2021.05.151. [Crossref]
32. McCoy-West, A. J.; Bignall, G.; Harvey, C. C. Geothermal Power Potential of Selected Pacific Nations Available online: https://prdrse4all.spc.int/system/files/geothermal_potential.pdf (accessed on 29 December 2024).
33. Kuna, I.; Zehner, R. Papua New Guinea Country Update Available online: https://www.academia.edu/104535621/Papua_New_Guinea_Country_Update (accessed on 20 December 2024).
34. Koon, R.K.; Marshall, S.; Morna, D.; McCallum, R.; Ashtine, M. A Review of Caribbean Geothermal Energy Resource Potential. West Indian J. Eng. 2020, 42, 37–43. [Google Scholar]
35. Kabir, M.; Chowdhury, M.S.; Sultana, N.; Jamal, M.S.; Techato, K. Ocean Renewable Energy and Its Prospect for Developing Economies. In Renewable Energy and Sustainability; Elsevier, 2022, 263–298, doi:10.1016/B978-0-323-88668-0.00007-3. [Crossref]
36. Guo, R.; Liu, Z.; Wei, H.; Wang, G.; Zhao, S.; Deng, Y. Environmental Policy and Risk Regulatory Framework for Sustainable Tidal Current Energy in China. Sustainability 2026, 18, 3224, doi:10.3390/su18073224. [Crossref]
37. Lemessy, K.G.; Manohar, K.; Adeyanju, A. A Review of Wave Energy Conversion and Its Place in the Caribbean Region.; 2019. [Google Scholar]
38. Lemessy, K.G.; Manohar, K.; Adeyanju, A. Analysis of the Caribbean Wave Climate for Wave Energy Harvesting. IET Renew. Power Gener. 2021, 15, 3409–3423, doi:10.1049/rpg2.12285. [Crossref]
39. McGlynn, J.; Johnston, S.; Prado, V.R. Ocean Energy in Barbados: A Review of Clean Technology Options, Available Resource and Locational Guidance for Potential Areas of Interest for Commercial Development; Inter-American Development Bank, 2020, doi:10.18235/0002234. [Crossref]
40. To, L.S.; Seebaluck, V.; Leach, M. Future Energy Transitions for Bagasse Cogeneration: Lessons from Multi-Level and Policy Innovations in Mauritius. Energy Res. Soc. Sci. 2018, 35, 68–77, doi:10.1016/j.erss.2017.10.051. [Crossref]
41. Bernard, M.A.H.; Lucotte, M.M. Bamboo Biomass for Bioenergy Production in Mauritius. J. Sustain. Bioenergy Syst. 2022, 12, 82–98, doi:10.4236/jsbs.2022.124006. [Crossref]
42. Prasad, R.D.; Bansal, R.C.; Raturi, A. A Review of Fiji’s Energy Situation: Challenges and Strategies as a Small Island Developing State. Renew. Sustain. Energy Rev. 2017, 75, 278–292, doi:10.1016/j.rser.2016.10.070. [Crossref]
43. Overland, I.; Juraev, J.; Vakulchuk, R. Are Renewable Energy Sources More Evenly Distributed than Fossil Fuels? Renew. Energy 2022, 200, 379–386, doi:10.1016/j.renene.2022.09.046. [Crossref]
44. Allam, Z.; Jones, D. Climate Change and Economic Resilience through Urban and Cultural Heritage: The Case of Emerging Small Island Developing States Economies. Economies 2019, 7, 62, doi:10.3390/economies7020062. [Crossref]
45. Timilsina, G.R.; Shah, K.U. Filling the Gaps: Policy Supports and Interventions for Scaling up Renewable Energy Development in Small Island Developing States. Energy Policy 2016, 98, 653–662, doi:10.1016/j.enpol.2016.02.028. [Crossref]
46. Sakah, M.; Diawuo, F.A.; Katzenbach, R.; Gyamfi, S. Towards a Sustainable Electrification in Ghana: A Review of Renewable Energy Deployment Policies. Renew. Sustain. Energy Rev. 2017, 79, 544–557, doi:10.1016/j.rser.2017.05.090. [Crossref]
47. Atalay, Y.; Kalfagianni, A.; Pattberg, P. Renewable Energy Support Mechanisms in the Gulf Cooperation Council States: Analyzing the Feasibility of Feed-in Tariffs and Auction Mechanisms. Renew. Sustain. Energy Rev. 2017, 72, 723–733, doi:10.1016/j.rser.2017.01.103. [Crossref]
48. Natacha C., M.; Paredes, J.R.; Rickerson, W.; Flynn, H.; Hanley, C.; Jacobs, D.; Solano-Peralta, M. Feed-in Tariffs in Latin America and the Caribbean: The Search for Transparency, Longevity, Certainty and Consistency (TLC) Available online: https://www.researchgate.net/publication/323683226_Feed-in_Tariffs_in_Latin_America_and_the_Caribbean_The_Search_for_Transparency_Longevity_Certainty_and_Consistency_TLC (accessed on 12 March 2025).
49. Qudrat-Ullah, H. A Framework for Developing and Implementing FIT Policies for Renewable Energy Based on Local Economic Conditions. Sustain. Futur. 2024, 7, 100170, doi:10.1016/j.sftr.2024.100170. [Crossref]
50. Lai, M.; Robinson, S.; Salas, E.; Thao, W.; Shorb, A. Climate Justice for Small Island Developing States: Identifying Appropriate International Financing Mechanisms for Loss and Damage. Clim. Policy 2022, 22, 1213–1224, doi:10.1080/14693062.2022.2112017. [Crossref]
51. Yasin Çağlar, K.; Kaya, H. Global Energy Policy: A Legal Perspective on Renewable Energy Initiatives. Sustainability 2025, 17, doi:10.3390/su17093991. [Crossref]
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