Energy access challenge and the role of fossil fuels in meeting electricity demand: Promoting renewable energy capacity for sustainable development
Jinjun Zhang
Geoscience Frontiers ›› 2024, Vol. 15 ›› Issue (5) : 101873.
Energy access challenge and the role of fossil fuels in meeting electricity demand: Promoting renewable energy capacity for sustainable development
The energy access challenge remains a significant barrier to sustainable development, with millions of people still needing access to modern energy services. Fossil fuels have played a crucial role in meeting electricity demand, but they face challenges and drawbacks in terms of environmental sustainability, energy security, and climate change. This study examines how renewable and non-renewable energy generation capacity impacted the environment in 53 upper-middle-income countries from 1990 to 2020, using energy access and alternative energy sources as mediating variables. The findings of this study provide valuable insights into the complex relationship between renewable energy generation capacity, energy access, alternative energy sources, and environmental conditions in upper-middle-income countries. The positive relationship between renewable energy generation capacity and environmental conditions emphasizes the importance and potential of renewable energy sources in mitigating environmental degradation. Additionally, the findings indicate that energy access also plays a crucial role in shaping energy generation patterns, with higher levels of access being associated with increased renewable energy generation and decreased reliance on non-renewable energy sources. These findings highlight the urgent need for policies and measures to promote renewable energy adoption and prioritize energy access to mitigate environmental degradation and achieve sustainable development goals.
Access to electricity / Renewable power capacity / Alternative and nuclear energy / Fossil fuels electricity capacity / Carbon Dioxide Emissions
[] |
T. Addison, A. Roe. Extractive industries: the management of resources as a driver of sustainable development protecting the environment during and after resource extraction. Oapen. Org, 1–26 (2018),
CrossRef
Google scholar
|
[] |
T.S. Adebayo. Renewable energy consumption and environmental sustainability in Canada: Does political stability make a difference?. Environ. Sci. Pollut. Res., 29 (2022), pp. 61307-61322,
CrossRef
Google scholar
|
[] |
T.S. Adebayo, A.A. Awosusi, D. Kirikkaleli, G.D. Akinsola, M.N. Mwamba. Can CO2 emissions and energy consumption determine the economic performance of South Korea? A time series analysis. Environ. Sci. Pollut. Res., 28 (2021), pp. 38969-38984,
CrossRef
Google scholar
|
[] |
A. Adewale, F. Victor, S. Asumadu. Science of the total environment dynamic impact of trade policy, economic growth, fertility rate, renewable and non-renewable energy consumption on ecological footprint in Europe. Sci. Total Environ., 685 (2019), pp. 702-709,
CrossRef
Google scholar
|
[] |
P.K. Adom, S. Adams. Technical fossil fuel energy efficiency (TFFEE) and debt-finance government expenditure nexus in Africa. J. Clean. Prod., 271 (2020), Article 122670,
CrossRef
Google scholar
|
[] |
Dilip Ahuja, Tatsutani, M., Schaffer, D., 2008. Sustainable energy for developing countries. SAPI EN. S. Surv. Perspect. Integr. Environ. Soc. 2.1, 1–48.
|
[] |
R. Alvarado, Q. Deng, B. Tillaguango, P. Méndez, D. Bravo, J. Chamba, M. Alvarado-Lopez, M. Ahmad. Do economic development and human capital decrease non-renewable energy consumption?. Evidence for OECD Countries. Energy, 215 (2021), Article 119147,
CrossRef
Google scholar
|
[] |
N. Apergis, M.B. Jebli, S.B. Youssef. Does renewable energy consumption and health expenditures decrease carbon dioxide emissions? Evidence for sub-saharan. Renew. Energy., 127 (2018), pp. 1011-1016,
CrossRef
Google scholar
|
[] |
D.W. Arner, R.P. Buckley, D.A. Zetzsche, R. Veidt. Sustainability, FinTech and Financial Inclusion. Eur. Bus. Organ. Law Rev., 21 (2020), pp. 7-35,
CrossRef
Google scholar
|
[] |
M. Aucott, C. Hall. Does a change in price of fuel affect GDP growth? An Examination of the U.S. Data from 1950–2013. Energies, 7 (2014), pp. 6558-6570,
CrossRef
Google scholar
|
[] |
M. Aydin. The effect of biomass energy consumption on economic growth in BRICS countries: A country-specific panel data analysis. Renew. Energy, 138 (2019), pp. 620-627,
CrossRef
Google scholar
|
[] |
W. Azam, I. Khan, S.A. Ali. Alternative energy and natural resources in determining environmental sustainability: a look at the role of government final consumption expenditures in France. Environ. Sci. Pollut. Res. (2022),
CrossRef
Google scholar
|
[] |
R. Bai, Y. Liu. Natural resources as a source of financing energy poverty reduction?. Resources Extraction Perspective. Resour. Policy, 82 (2023), pp. 1-27,
CrossRef
Google scholar
|
[] |
H. Balat. Role of coal in sustainable energy development. Energy Explor. Exploit., 25 (2007), pp. 151-174,
CrossRef
Google scholar
|
[] |
D. Balsalobre-Lorente, O.M. Driha, N.C. Leitão, M. Murshed. The carbon dioxide neutralizing effect of energy innovation on international tourism in EU-5 countries under the prism of the EKC hypothesis. J. Environ. Manage. (2021),
CrossRef
Google scholar
|
[] |
F.V. Bekun. Mitigating Emissions in India: Accounting for the role of real income, renewable energy consumption and investment in energy. Int. J. Energy Econ. Policy, 12 (2022), pp. 188-192, 10.32479/ijeep.12652
|
[] |
F.V. Bekun, A.A. Alola, S.A. Sarkodie. Toward a sustainable environment: Nexus between CO2 emissions, resource rent, renewable and nonrenewable energy in 16-EU countries. Sci. Total Environ., 657 (2019), pp. 1023-1029,
CrossRef
Google scholar
|
[] |
F.V. Bekun, A.A. Alola, B.A. Gyamfi, A.B. Ampomah. The environmental aspects of conventional and clean energy policy in sub-Saharan Africa: is N-shaped hypothesis valid?. Environ. Sci. Pollut. Res., 28 (2021), pp. 66695-66708,
CrossRef
Google scholar
|
[] |
Bilal, I. Khan, D. Tan, W. Azam, S. Tauseef Hassan. Alternate energy sources and environmental quality: The impact of inflation dynamics. Gondwana Res., 106 (2022), pp. 51-63,
CrossRef
Google scholar
|
[] |
Y. Bilan, D. Streimikiene, T. Vasylieva, O. Lyulyov, T. Pimonenko, A. Pavlyk. Linking between Renewable Energy, CO2 Emissions, and Economic Growth : Challenges for Candidates and Potential Candidates for the EU Membership. Sustainability, 11 (2019), pp. 1-16,
CrossRef
Google scholar
|
[] |
Brain-Taylor. Canadian Public Policy Trade and the Environment : Theory and Evidence by Brian R. Copeland; M. Scott Taylor. Univ. Toronto Press Can. Public Policy are Collab. with JSTOR to Digit. Preserv. extend access to Can. Public Policy /anal. Polit., 30 (2004), pp. 456-458
|
[] |
A.E. Caglar, B. Guloglu, A. Gedikli. Moving towards sustainable environmental development for BRICS: Investigating the asymmetric effect of natural resources on CO2. Sustain. Dev., 1–2 (2022),
CrossRef
Google scholar
|
[] |
Y. Cai, A.N. Menegaki. Fourier quantile unit root test for the integrational properties of clean energy consumption in emerging economies. Energy Econ., 78 (2019), pp. 324-334,
CrossRef
Google scholar
|
[] |
P.P. Carson, K.D. Carson, R.W. Griffeth, P. Robert. Have library access ? Log in through your library All Content Images Search journals, books, images, and primary sources. J. Bus. Psychol., 8 (1994), pp. 22-25
|
[] |
V. Castán Broto, J. Kirshner. Energy access is needed to maintain health during pandemics. Nat. Energy, 5 (2020), pp. 419-421,
CrossRef
Google scholar
|
[] |
C. Chen, M. Pinar, T. Stengos. Renewable energy consumption and economic growth nexus: Evidence from a threshold model. Energy Policy, 139 (2020), Article 111295,
CrossRef
Google scholar
|
[] |
Y. Chen, J. Zhao, Z. Lai, Z. Wang, H. Xia. Exploring the effects of economic growth, and renewable and non-renewable energy consumption on China’s CO2 emissions: Evidence from a regional panel analysis. Renew. Energy, 140 (2019), pp. 341-353,
CrossRef
Google scholar
|
[] |
R. Chopra, C. Magazzino, M.I. Shah, G.D. Sharma, A. Rao, U. Shahzad. The role of renewable energy and natural resources for sustainable agriculture in ASEAN countries: Do carbon emissions and deforestation affect agriculture productivity?. Resour. Policy, 76 (2022), Article 102578,
CrossRef
Google scholar
|
[] |
Melissa Denchak, 2022. Fossil Fuels: The Dirty Facts, Nrdc.
|
[] |
A. Díaz, G.A. Marrero, L.A. Puch, J. Rodríguez. Economic growth, energy intensity and the energy mix. Energy Econ., 81 (2019), pp. 1056-1077,
CrossRef
Google scholar
|
[] |
A. Dimitrijević, M. Gavrilović, S. Ivanović, Z. Mileusnić, R. Miodragović, S. Todorović. Energy use and economic analysis of fertilizer use in wheat and sugar beet production in Serbia. Energies, 13 (2020), pp. 1-12,
CrossRef
Google scholar
|
[] |
K. Dong, G. Hochman, G.R. Timilsina. Do drivers of CO2 emission growth alter overtime and by the stage of economic development?. Energy Policy, 140 (2020), Article 111420,
CrossRef
Google scholar
|
[] |
Energypedia, 2020. Economic Impact of Energy Access on Individuals and the Community Economic Benefits of Energy Access, Systems, Solar Home Development, Economic 1–7.
|
[] |
M.U. Etokakpan, S.A. Solarin, V. Yorucu, F.V. Bekun, S.A. Sarkodie. Modeling natural gas consumption, capital formation, globalization, CO2 emissions and economic growth nexus in Malaysia: Fresh evidence from combined cointegration and causality analysis. Energy Strateg. Rev., 31 (2020), pp. 1-28,
CrossRef
Google scholar
|
[] |
S.T. Hassan, P. Wang, I. Khan, B. Zhu. The impact of economic complexity, technology advancements, and nuclear energy consumption on the ecological footprint of the USA: Towards circular economy initiatives. Gondwana Res., 113 (2022), pp. 237-246,
CrossRef
Google scholar
|
[] |
T.J. Hastie, D. Pregibon. Generalized linear models. Stat. Model. S, 195–247 (2017),
CrossRef
Google scholar
|
[] |
A. Henningsen, G. Henningsen, E. van der Werf. Capital-labour-energy substitution in a nested CES framework: A replication and update of Kemfert (1998). Energy Econ., 82 (2019), pp. 16-25,
CrossRef
Google scholar
|
[] |
IEA, 2019. Energy security Reliable, affordable access to all fuels and energy sources, https://www.iea.org/topics/energy-security. Int. Energy Agency.
|
[] |
IEA, 2020. Defining energy access: 2020 methodology – Analysis - IEA, https://www.iea.org/articles/defining-energy-access-2020-methodology. Iea.
|
[] |
International Energy Agency, 2020. Germany Energy Policy Review. Iea.
|
[] |
International Energy Agency, 2021. Net Zero by 2050 A Roadmap for the Global Energy Sector, https://iea.blob.core.windows.net/assets/beceb956-0dcf-4d73-89fe-1310e3046d68/NetZeroby2050-ARoadmapfortheGlobalEnergySector_CORR.pdf.
|
[] |
K. Ivanovski, A. Hailemariam, R. Smyth. The effect of renewable and non-renewable energy consumption on economic growth: Non-parametric evidence. J. Clean. Prod., 124956 (2020),
CrossRef
Google scholar
|
[] |
T.Y. Jung, M. Huh, J. Moon. Goal 7: affordable and clean energy. Sustain. Dev. Goals Repub. Korea, 65–84 (2018),
CrossRef
Google scholar
|
[] |
M.K. Khan, M.I. Khan, M. Rehan. The relationship between energy consumption, economic growth and carbon dioxide emissions in Pakistan. Financ. Innov., 6 (2020), pp. 1-13,
CrossRef
Google scholar
|
[] |
A. Kibria, S.B. Akhundjanov, R. Oladi. Fossil fuel share in the energy mix and economic growth. Int. Rev. Econ. Financ., 59 (2019), pp. 253-264,
CrossRef
Google scholar
|
[] |
M. Kumar. Social, Economic, and Environmental Impacts of Renewable Energy Resources. Wind Sol. Hybrid Renew. Energy Syst. [working Title] (2020), pp. 1-16,
CrossRef
Google scholar
|
[] |
C.R.J. Kumar, M.A. Majid. Renewable energy for sustainable development in India: Current status, future prospects, challenges, employment, and investment opportunities. Energy. Sustain. Soc., 10 (2020), pp. 1-31,
CrossRef
Google scholar
|
[] |
C.R.J. Kumar, M.A. Majid. Renewable energy for sustainable development in India: Current status, future prospects, challenges, employment, and investment opportunities. Energy. Sustain. Soc., 10 (2020), pp. 1-96,
CrossRef
Google scholar
|
[] |
H.P. Le, S.A. Sarkodie. Dynamic linkage between renewable and conventional energy use, environmental quality and economic growth: Evidence from Emerging Market and Developing Economies. Energy Reports, 6 (2020), pp. 965-973,
CrossRef
Google scholar
|
[] |
H. Liu, M.W. Zafar, A. Sinha, I. Khan. The path to sustainable environment : Do environmental taxes and governance matter ?. Sustain. Dev., 31 (2023), pp. 2278-2290,
CrossRef
Google scholar
|
[] |
Q. Liu, Z. Zhao, Y. Liu, Y. He. Natural resources commodity prices volatility, economic performance and environment: Evaluating the role of oil rents. Resour. Policy, 76 (2022), Article 102548,
CrossRef
Google scholar
|
[] |
A.C. Marques, J.A. Fuinhas, C. Tomás. Energy efficiency and sustainable growth in industrial sectors in European Union countries: A nonlinear ARDL approach. J. Clean. Prod., 239 (2019),
CrossRef
Google scholar
|
[] |
I. Martínez-Zarzoso, A. Maruotti. The impact of urbanization on CO2 emissions: Evidence from developing countries. Ecol. Econ., 70 (2011), pp. 1344-1353,
CrossRef
Google scholar
|
[] |
A. Mayer. Fossil fuel dependence and energy insecurity. Energy. Sustain. Soc., 12 (2022), pp. 1-38,
CrossRef
Google scholar
|
[] |
I.A. Mensah, M. Sun, C. Gao, A.Y. Omari-Sasu, D. Zhu, B.C. Ampimah, A. Quarcoo. Analysis on the nexus of economic growth, fossil fuel energy consumption, CO2 emissions and oil price in Africa based on a PMG panel ARDL approach. J. Clean. Prod., 228 (2019), pp. 161-174,
CrossRef
Google scholar
|
[] |
F.M. Mirza, A. Sinha, J. Rehman Khan, O.A. Kalugina, M. Wasif Zafar. Impact of energy efficiency on CO2 Emissions: Empirical evidence from developing countries. Gondwana Res., 106 (2022), pp. 64-77,
CrossRef
Google scholar
|
[] |
M. Moner-Girona, A. Bender, W. Becker, K. Bódis, S. Szabó, A.G. Kararach, L.D. Anadon. A multidimensional high-resolution assessment approach to boost decentralised energy investments in Sub-Saharan Africa. Renew. Sustain. Energy Rev., 148 (2021), pp. 1-51,
CrossRef
Google scholar
|
[] |
Y. Mulugetta, E. Ben Hagan, D. Kammen. Energy access for sustainable development. Environ. Res. Lett., 14 (2019), pp. 1-11,
CrossRef
Google scholar
|
[] |
A. Nabavi-Pelesaraei, H. Azadi, S. Van Passel, Z. Saber, F. Hosseini-Fashami, F. Mostashari-Rad, H. Ghasemi-Mobtaker. Prospects of solar systems in production chain of sunflower oil using cold press method with concentrating energy and life cycle assessment. Energy, 223 (2021), Article 120117,
CrossRef
Google scholar
|
[] |
J.P. Namahoro, Q. Wu, N. Zhou, S. Xue. Impact of energy intensity, renewable energy, and economic growth on CO2 emissions: Evidence from Africa across regions and income levels. Renew. Sustain. Energy Rev., 147 (2021), Article 111233,
CrossRef
Google scholar
|
[] |
S.P. Nathaniel. Ecological footprint, energy use, trade, and urbanization linkage in Indonesia. GeoJournal, 7 (2020),
CrossRef
Google scholar
|
[] |
S.P. Nathaniel, K. Yalçiner, F.V. Bekun. Assessing the environmental sustainability corridor: Linking natural resources, renewable energy, human capital, and ecological footprint in BRICS. Resour. Policy, 70 (2021), pp. 19-21,
CrossRef
Google scholar
|
[] |
C.P. Nguyen, T.D. Su. Alleviating energy poverty for forest conservation: It seems to work, but what are we missing?. Land Use Policy, 109 (2021), pp. 19-21,
CrossRef
Google scholar
|
[] |
C.W. Njiru, S.C. Letema. Energy poverty and its implication on standard of living in Kirinyaga. Kenya. J. Energy, 2018 (2018), p. 3196567,
CrossRef
Google scholar
|
[] |
Ntinyari, W., Gweyi-onyango, J.P., 2021. Greenhouse Gases Emissions in Agricultural Systems and Climate Change Effects in Sub- Saharan Africa.
|
[] |
P.A. Owusu, S. Asumadu-Sarkodie. A review of renewable energy sources, sustainability issues and climate change mitigation. Cogent Eng., 3 (2016), pp. 1-40,
CrossRef
Google scholar
|
[] |
U.K. Pata, A.E. Caglar. Investigating the EKC hypothesis with renewable energy consumption, human capital, globalization and trade openness for China: Evidence from augmented ARDL approach with a structural break. Energy, 119220 (2020),
CrossRef
Google scholar
|
[] |
M.H. Pesaran. A simple panel unit root test in the presence of cross-section dependence. J. Appl. Econom., 21 (2007), pp. 1-21,
CrossRef
Google scholar
|
[] |
M.H. Pesaran. General diagnostic tests for cross-sectional dependence in panels. Empir. Econ., 60 (2021), pp. 13-50,
CrossRef
Google scholar
|
[] |
Pesaran, M.H., 2004. General Diagnostic Tests for Cross Section Dependence in Panels. IZA Discuss. Pap. No. 1240 August 2004 1–39.
|
[] |
T. Qi, X. Zhang, V.J. Karplus. The impact of renewable energy development on energy and CO2 Emissions in China. Transit. to Renew. Energy Syst., 68 (2013), pp. 29-46,
CrossRef
Google scholar
|
[] |
Rasoulinezhad, E., Taghizadeh-hesary, F., 2020. How Is Mortality A ff ected by Fossil Fuel Consumption , CO2 Emissions and Economic Factors.
|
[] |
B.N. Rath, V. Akram, D.P. Bal, M.K. Mahalik. Do fossil fuel and renewable energy consumption affect total factor productivity growth? Evidence from cross-country data with policy insights. Energy Policy, 127 (2019), pp. 186-199,
CrossRef
Google scholar
|
[] |
S. Rej, B. Nag. Energy crossroads and prioritization of energy choices: the case of India. OPEC Energy Rev., 45 (2021), pp. 135-158,
CrossRef
Google scholar
|
[] |
M. Santosh, D.I. Groves, C.-X. Yang. Habitable planet to sustainable civilization: Global climate change with related clean energy transition reliant on declining critical metal resources. Gondwana Res., 130 (2024), pp. 220-233,
CrossRef
Google scholar
|
[] |
S.A. Sarker, S. Wang, K.M.M. Adnan. Energy Consumption and Economic Growth Nexus in Bangladesh. J. Syst. Sci. Inf., 7 (2019), pp. 497-509, 10.21078/jssi-2019-497-13
|
[] |
S. Saud, A. Haseeb, S. Anees, H. Zaidi, I. Khan, H. Li. Moving towards green growth ? Harnessing natural resources and economic complexity for sustainable development through the lens of the N-shaped EKC framework for the European Union. Resour. Policy, 91 (2024), Article 104804,
CrossRef
Google scholar
|
[] |
A. Sharif, S. Mishra, A. Sinha, Z. Jiao. The renewable energy consumption-environmental degradation nexus in Top-10 polluted countries : Fresh insights from quantile-on- quantile regression approach. Renew. Energy, 150 (2020), pp. 670-690,
CrossRef
Google scholar
|
[] |
R. Sharma, A. Sinha, P. Kautish. Does renewable energy consumption reduce ecological footprint? Evidence from eight developing countries of Asia. J. Clean. Prod., 285 (2021),
CrossRef
Google scholar
|
[] |
A. Sinha, D. Balsalobre-Lorente, M.W. Zafar, M.M. Saleem. Analyzing global inequality in access to energy: Developing policy framework by inequality decomposition. J. Environ. Manage., 304 (2022), Article 114299,
CrossRef
Google scholar
|
[] |
S.A. Solarin, A.K. Tiwari, M.O. Bello. A multi-country convergence analysis of ecological footprint and its components. Sustain. Cities Soc., 46 (2019), Article 101422,
CrossRef
Google scholar
|
[] |
J. Speirs, C. McGlade, R. Slade. Uncertainty in the availability of natural resources: Fossil fuels, critical metals and biomass. Energy Policy, 87 (2015), pp. 654-664,
CrossRef
Google scholar
|
[] |
F.R. Spellman. Environmental Impacts of Renewable Energy. CRC Press, Boca Raton (2014)
|
[] |
Y. Sun, L. Zhu, Z. Xu, L. Xiao, J. Zhang, J. Zhang. Characteristic analysis and forecast of electricity supply and demand in APEC. Glob. Energy Interconnect., 2 (2019), pp. 413-422,
CrossRef
Google scholar
|
[] |
F. Taghizadeh-Hesary, Y. Chang, N. Yoshino, P.J. Morgan. Energy insecurity, renewable energy and economic growth. Singapore Econ. Rev., 66 (2021), pp. 313-322,
CrossRef
Google scholar
|
[] |
S. Tongsopit, N. Kittner, Y. Chang, A. Aksornkij, W. Wangjiraniran. Energy security in ASEAN: A quantitative approach for sustainable energy policy. Energy Policy, 90 (2016), pp. 60-72,
CrossRef
Google scholar
|
[] |
Twas, 2008. Sustainable energy for developing countries. SAPI EN. S. Surv. Perspect. Integr. Environ. Soc. 2.1, 1–48.
|
[] |
M. Usman, M. Radulescu. Examining the role of nuclear and renewable energy in reducing carbon footprint : Does the role of technological innovation really create some difference ?. Sci. Total Environ., 841 (2022), Article 156662
|
[] |
Z. Wang, W. He, B. Wang. Performance and reduction potential of energy and CO2 emissions among the APEC’s members with considering the return to scale. Energy (2017),
CrossRef
Google scholar
|
[] |
Y. Wang, J. Li. Spatial spillover effect of non-fossil fuel power generation on carbon dioxide emissions across China’s provinces. Renew. Energy, 136 (2019), pp. 317-330,
CrossRef
Google scholar
|
[] |
H. Wang, G. Wang, J. Qi, H. Schandl, Y. Li, C. Feng, X. Yang, Y. Wang, X. Wang, S. Liang. Scarcity-weighted fossil fuel footprint of China at the provincial level. Appl. Energy, 258 (2020), Article 114081,
CrossRef
Google scholar
|
[] |
D. Wei, F. Ahmad, N. Abid, I. Khan. The impact of digital inclusive finance on the growth of the renewable energy industry : Theoretical and logical Chinese experience. J. Clean. Prod., 428 (2023), Article 139357,
CrossRef
Google scholar
|
[] |
J. Westerlund. Testing for error correction in panel data. Oxf. Bull. Econ. Stat., 69 (2007), pp. 709-748,
CrossRef
Google scholar
|
[] |
World Energy Council, 2020. World Energy Trilemma Index 2020, https://www.worldenergy.org/publications/entry/world-energy-trilemma-index-2020. World Energy Counc. Olyver Wyman 1–69.
|
[] |
World Sustainable Energy Day, 2022. Energy Days 2022 What are the World Sustainable Energy Days, https://www.wsed.at/ [WWW Document].
|
[] |
C. Xue, M. Shahbaz, Z. Ahmed, M. Ahmad, A. Sinha. Clean energy consumption, economic growth, and environmental sustainability: What is the role of economic policy uncertainty?. Renew. Energy, 184 (2022), pp. 899-907,
CrossRef
Google scholar
|
[] |
X. Yang, L. He, Z. Zhong, D. Wang. How does China’s green institutional environment affect renewable energy investments?. The Nonlinear Perspective. Sci. Total Environ., 727 (2020), Article 138689,
CrossRef
Google scholar
|
[] |
H. Yaqoob, Y.H. Teoh, T.S. Goraya, F. Sher, M.A. Jamil, T. Rashid, K.A. Yar. Energy evaluation and environmental impact assessment of transportation fuels in Pakistan. Case Stud. Chem. Environ. Eng., 3 (2021), pp. 1-21,
CrossRef
Google scholar
|
[] |
R. York, S.E. Bell. Energy transitions or additions?: Why a transition from fossil fuels requires more than the growth of renewable energy. Energy Res. Soc. Sci., 51 (2019), pp. 40-43,
CrossRef
Google scholar
|
[] |
I. Younis, A. Naz, S.A.A. Shah, M. Nadeem, C. Longsheng. Impact of stock market, renewable energy consumption and urbanization on environmental degradation: new evidence from BRICS countries. Environ. Sci. Pollut. Res., 28 (2021), pp. 31549-31565,
CrossRef
Google scholar
|
[] |
H. Yu, W. Wei, J. Li, Y. Li. The impact of green digital finance on energy resources and climate change mitigation in carbon neutrality: Case of 60 economies. Resour. Policy, 79 (2022), pp. 1-18,
CrossRef
Google scholar
|
[] |
Y. Zhang. How Economic Performance of OECD economies influences through Green Finance and Renewable Energy Investment Resources? Resour. Policy, 79 (2022), pp. 1-35,
CrossRef
Google scholar
|
[] |
F. Zheng, X. Zhou, B. Rahat, G. Rubbaniy. Carbon neutrality target for leading exporting countries: On the role of economic complexity index and renewable energy electricity. J. Environ. Manage., 299 (2021), Article 113558,
CrossRef
Google scholar
|
[] |
S. Zhu, M. Wasif, M. Usman, O.A. Kalugina. Internalizing negative environmental externalities through environmental technologies : The contribution of renewable energy in OECD countries. Sustain. Energy Technol. Assessments, 64 (2024), Article 103726,
CrossRef
Google scholar
|
/
〈 |
|
〉 |