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Research Article

The driving factors of CO2 emissions from electricity generation in Spain: A decomposition analysis

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References

  • Akyürek, Z. 2020. LMDI decomposition analysis of energy consumption of Turkish manufacturing industry: 2005–2014. Energy Efficiency 13 (4):649–14. doi:10.1007/s12053-020-09846-8.
  • Ang, B. W. 2004. Decomposition analysis for policy making in energy: Which is the preferred method? Energy Policy 32 (9):1131–39. doi:10.1016/S0301-4215(03)00076-4.
  • Ang, B. W. 2005. The LMDI approach to decomposition analysis: A practical guide. Energy Policy 33 (7):867–71. doi:10.1016/j.enpol.2003.10.010.
  • Ang, B. W., and F. Q. Zhang. 1999. Inter-regional comparisons of energy-related CO2 emissions using the decomposition technique. Energy 24 (4):297–305. doi:10.1016/S0360-5442(98)00092-9.
  • Ang, B. W., and F. Q. Zhang. 2000. A survey of index decomposition analysis in energy and environmental studies. Energy 25 (12):1149–76. doi:10.1016/S0360-5442(00)00039-6.
  • Baležentis, A., T. Baležentis, and D. Streimikiene. 2011. The energy intensity in Lithuania during 1995–2009: A LMDI approach. Energy Policy 39 (11):7322–34. doi:10.1016/j.enpol.2011.08.055.
  • Cansino, J. M., A. Sánchez-Braza, and M. L. Rodríguez-Arévalo. 2015. Driving forces of Spain’s CO2 emissions: A LMDI decomposition approach. Renewable and Sustainable Energy Reviews 48:749–59. doi:10.1016/j.rser.2015.04.011.
  • Cansino, J. M., R. Román, and M. Ordóñez. 2016. Main drivers of changes in CO2 emissions in the Spanish economy: A structural decomposition analysis. Energy Policy 89:150–59. doi:10.1016/j.enpol.2015.11.020.
  • Chen, J., P. Wang, L. Cui, S. Huang, and M. Song. 2018. Decomposition and decoupling analysis of CO2 emissions in OECD. Applied Energy 231:937–50. doi:10.1016/j.apenergy.2018.09.179.
  • European Commission (EC). 2019. Energy datasheets: EU28 countries. Energy Statistics. EU Commission, DG Energy, Unit A4. Accessed November 15, 2019. https://ec.europa.eu/energy/sites/ener/files/energy_statistical_countrydatasheets.xlsx
  • Fernández González, P., M. Landajo, and M. Presno. 2014. Tracking European Union CO2 emissions through LMDI (logarithmic-mean Divisia index) decomposition. The activity revaluation approach. Energy 73:741–50. doi:10.1016/j.energy.2014.06.078.
  • Hatzigeorgiou, E., H. Polatidis, and D. Haralambopoulos. 2008. CO2 emissions in Greece for 1990–2002: A decomposition analysis and comparison of results using the Arithmetic Mean Divisia Index and Logarithmic Mean Divisia Index techniques. Energy 33 (3):492–99. doi:10.1016/j.energy.2007.09.014.
  • Huda, M., K. Okajima, and K. Suzuki. 2017. CO2 Emission from electricity generation in Malaysia: A decomposition analysis. Journal of Energy and Power Engineering 11:779–88.
  • International Energy Agency (IEA). 2015. CO2 emissions from fuel combustion. Highlights. 2015 ed. Paris: IEA, OECD.
  • IRENA. 2020. Global renewables outlook: Energy transformation 2050. Abu Dhabi: International Renewable Energy Agency.
  • Jiang, X.-T., M. Su, and R. Li. 2018. Decomposition analysis in electricity sector output from carbon emissions in China. Sustainability 10 (9):3251. doi:10.3390/su10093251.
  • Karmellos, M., D. Kopidou, and D. Diakoulaki. 2016. A decomposition analysis of the driving factors of CO2 (Carbon dioxide) emissions from the power sector in the European Union countries. Energy 94:680–92. doi:10.1016/j.energy.2015.10.145.
  • Kaya, Y. 1989. Impact of carbon dioxide emission control on GNP growth: Interpretation of proposed scenarios. Paper presented to the Energy and Industry Subgroup. Response Strategies Working Group, Intergovernmental Panel on Climate Change, Paris, France.
  • Kim, H., M. Kim, H. Kim, and H. Park. 2020. Decomposition analysis of CO2 emission from electricity generation: Comparison of OECD countries before and after the financial crisis. Energies 13 (14):3522. doi:10.3390/en13143522.
  • Kim, J., and E. Heo. 2016. Sources of structural change in energy use: A decomposition analysis for Korea. Energy Sources, Part B: Economics, Planning, and Policy 11 (4):309–13. doi:10.1080/15567249.2011.626014.
  • Li, X., H. Liao, Y. F. Du, C. Wang, J. W. Wang, and Y. Liu. 2018. Carbon dioxide emissions from the electricity sector in major countries: A decomposition analysis. Environmental Science and Pollution Research 25 (7):6814–25. doi:10.1007/s11356-017-1013-z.
  • Lin, B., and H. Long. 2014. How to promote energy conservation in China’s chemical industry. Energy Policy 73:93–102. doi:10.1016/j.enpol.2014.05.056.
  • Ma, C., and D. I. Stern. 2006. Environmental and ecological economics: A citation analysis. Ecological Economics 58 (3):491–506. doi:10.1016/j.ecolecon.2005.07.023.
  • Mai, L., Q. Ran, and H. Wu. 2020. A LMDI decomposition analysis of carbon dioxide emissions from the electric power sector in Northwest China. Natural Resource Modeling 33 (4):e12284. doi:10.1111/nrm.12284.
  • Malla, S. 2009. CO2 emissions from electricity generation in seven Asia-Pacific and North American countries: A decomposition analysis. Energy Policy 37 (1):1–9. doi:10.1016/j.enpol.2008.08.010.
  • MITECO (Ministerio para la Transición Ecológica y Reto Demográfico). 2020. Plan Nacional Integrado de Energía y Clima.
  • Patiño, L. I., V. Alcántara, and E. Padilla. 2021. Driving forces of CO2 emissions and energy intensity in Colombia. Energy Policy 151:112130. doi:10.1016/j.enpol.2020.112130.
  • Rodrigues, J., J. Wang, P. Behrens, and P. de Boer. 2020. Drivers of CO2 emissions from electricity generation in the European Union 2000–2015. Renewable and Sustainable Energy Reviews 133:110104. doi:10.1016/j.rser.2020.110104.
  • Shrestha, R. M., G. Anandarajah, and M. H. Liyanage. 2009. Factors affecting CO2 emission from the power sector of selected countries in Asia and the Pacific. Energy Policy 37 (6):2375–84. doi:10.1016/j.enpol.2009.01.032.
  • Sun, J. W. 1999. Decomposition of aggregate CO2 emissions in the OECD: 1960–1995. The Energy Journal 20 (3):147–55. doi:10.5547/0195-6574-EJ-Vol20-No3-7.
  • Tarancón Morán M Ángel, del Río P and Albiñana F Callejas. 2008. Tracking the genealogy of CO2 emissions in the electricity sector: An intersectoral approach applied to the Spanish case. Energy Policy, 36(6): 1915–1926. doi:10.1016/j.enpol.2008.01.003.
  • Trotta, G. 2020. Assessing drivers of energy consumption and progress toward energy targets in Italy. Energy Sources, Part B: Economics, Planning, and Policy 15 (3):137–56. doi:10.1080/15567249.2020.1778817.
  • Wang, C., J. Chen, and J. Zou. 2005. Decomposition of energy-related CO2 emission in China: 1957–2000. Energy 30 (1):73–83. doi:10.1016/j.energy.2004.04.002.
  • Wang, H., B. W. Ang, and P. Zhou. 2018. Decomposing aggregate CO2 emission changes with heterogeneity: An extended production-theoretical approach. The Energy Journal 39 (1):59–80. doi:10.1016/j.energy.2018.01.112.
  • Wang, M., and C. Feng. 2008. Exploring the driving forces of energy-related CO2 emissions in China’s construction industry by utilizing production-theoretical decomposition analysis. Journal of Cleaner Production 202:710–19. doi:10.1016/j.jclepro.2018.08.152.
  • Winyuchakrit, P., and B. Limmeechokchai. 2016a. Multilevel decomposition analysis of energy intensity in the Thai road transport sector. Energy Sources, Part B: Economics, Planning, and Policy 11 (4):341–48. doi:10.1080/15567249.2011.607883.
  • Winyuchakrit, P., and B. Limmeechokchai. 2016b. Trends of energy intensity and CO2 emissions in the Thai industrial sector: The decomposition analysis. Energy Sources, Part B: Economics, Planning, and Policy 11 (6):504–10. doi:10.1080/15567249.2011.653706.
  • Yang, L., and B. Lin. 2016. Carbon dioxide-emission in China׳s power industry: Evidence and policy implications. Renewable and Sustainable Energy Reviews 60:258–67. doi:10.1016/j.rser.2016.01.058.
  • Yilmaz, M., and M. Atak. 2010. Decomposition analysis of sectoral energy consumption in Turkey. Energy Sources, Part B: Economics, Planning, and Policy 5 (2):224–31. doi:10.1080/15567240802533203.
  • Yu, J., C. Shao, C. Xue, and H. Hu. 2020. China’s aircraft-related CO2 emissions: Decomposition analysis, decoupling status, and future trends. Energy Policy 138:111215. doi:10.1016/j.enpol.2019.111215.
  • Zhang, F. Q., and B. W. Ang. 2001. Methodological issues in cross-country/region decomposition of energy and environment indicators. Energy Economics 23 (2):179–90. doi:10.1016/S0140-9883(00)00069-4.
  • Zhang, M., X. Liu, W. Wang, and M. Zhou. 2013. Decomposition analysis of CO2 emissions from electricity generation in China. Energy Policy 52:159–65. doi:10.1016/j.enpol.2012.10.013.
  • Zhao, Y., J. Ke, C. C. Ni, M. McNeil, N. Z. Khanna, N. Zhou, D. Fridley, and Q. Li. 2014. A comparative study of energy consumption and efficiency of Japanese and Chinese manufacturing industry. Energy Policy 70:45–56. doi:10.1016/j.enpol.2014.02.034.

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