Global Trends and Strategic Insights in Green Aviation: A Comprehensive Bibliometric and SWOT Analysis (2000–2024)

Authors

DOI:

https://doi.org/10.35365/eass.25.02.06

Keywords:

Green Aviation, Sustainable air transport, Bibliometric analysis, SWOT analysis

Abstract

This study presents a comprehensive bibliometric analysis of green aviation research conducted between 2000 and 2024. Against the backdrop of intensifying climate concerns and a global push for decarbonization, the field of green aviation has gained significant momentum. Using data sourced from the Scopus database and visualized through VOSviewer, this study identifies key publication trends, leading countries and institutions, dominant research themes, and collaborative networks that define the domain. Findings indicate a substantial increase in research output, particularly after 2015, corresponding with major international climate agreements. The United States, China, and Germany emerge as the most prolific contributors, with institutions such as NASA, MIT, and Tsinghua University playing central roles. Research hotspots are centered on sustainable aviation fuels, electric and hydrogen propulsion systems, and environmental impact mitigation strategies, including carbon reduction and noise abatement. Co-authorship and institutional collaboration maps reveal strong transatlantic networks and growing contributions from Asia-Pacific institutions. The study also includes a SWOT analysis to assess the strategic positioning of green aviation research and offers forward-looking recommendations. This work serves as a foundational reference for researchers, policymakers, and industry stakeholders seeking to navigate and influence the evolving landscape of sustainable aviation.

References

References

Airbus. (2020). Airbus Zeroe: Towards the world's first zero-emission commercial aircraft. https://www.airbus.com

Aria, M., & Cuccurullo, C. (2017). bibliometrix: An R-tool for comprehensive science mapping analysis. Journal of Informetrics, 11(4), 959-975.

ATAG (Air Transport Action Group). (2020). Waypoint 2050: Balancing growth in connectivity with a comprehensive global air transport response to the climate emergency. https://www.atag.org

Blakey, S., Rye, L., & Wilson, C. W. (2011). Aviation gas turbine alternative fuels: A review. Proceedings of the Combustion Institute, 33(2), 2863–2885.

Boeing. (2021). Boeing Sustainability Report. https://www.boeing.com/sustainability/

Clean Sky 2. (2022). Clean Sky Joint Undertaking: Annual Activity Report 2021. https://www.cleansky.eu

Donthu, N., Kumar, S., Mukherjee, D., Pandey, N., & Lim, W. M. (2021). How to conduct a bibliometric analysis: An overview and guidelines. Journal of Business Research, 133, 285–296. https://doi.org/10.1016/j.jbusres.2021.04.070

European Commission. (2022). Fit for 55: Delivering the EU’s 2030 Climate Target on the way to climate neutrality. https://ec.europa.eu

Fahey, D. W., et al. (2009). Aviation and the environment: A report by the U.S. Federal Aviation Administration. U.S. Department of Transportation.

Filippone, A. (2021). Advanced Aircraft Flight Performance. Cambridge University Press.

IATA. (2021). Net Zero Carbon Emissions by 2050.

https://www.iata.org/en/programs/environment/climate-change/

ICAO. (2022). Environmental Report 2022. https://www.icao.int

IEA. (2020). Tracking Transport 2020: Aviation. https://www.iea.org/reports/tracking-transport-2020/aviation

Lee, D. S., Fahey, D. W., Skowron, A., Allen, M. R., Burkhardt, U., Chen, Q., ... & Wilcox, L. J. (2021). The contribution of global aviation to climate change for 2000 to 2018. Atmospheric Environment, 244, 117834.

McKinsey & Company. (2020). Hydrogen-powered aviation: Preparing for take-off. https://www.mckinsey.com

Müller, J., Zhao, L., & Li, W. (2020). Hydrogen propulsion in future aviation: Challenges and perspectives. Energy, 193, 116685.

NASA. (2023). Sustainable Flight Demonstrator Program Overview. https://www.nasa.gov

Rajendran, S., Fullana-i-Palmer, P., & Fthenakis, V. (2020). Environmental impacts of aviation fuels derived from different feedstocks using LCA. Science of The Total Environment, 716, 137077.

Serrano, M., Gómez, D., & García, R. (2021). Challenges of sustainable aviation fuels: A review. Renewable and Sustainable Energy Reviews, 141, 110806.

Wang, Y., Chen, C., Zhang, L., & Li, Y. (2020). Research collaboration in green technologies: A bibliometric analysis. Journal of Cleaner Production, 255, 120049.

Zhang, X., & Liu, H. (2019). Electrification of aircraft: Technologies, trends and limitations. Renewable and Sustainable Energy Reviews, 114, 109292.

Zhou, Y., Sun, Y., & Zhang, Q. (2022). Life cycle assessment of aviation decarbonization pathways: A comparative review. Transportation Research Part D: Transport and Environment, 105, 103217.

Published

2025-08-22

How to Cite

Demir, B., Aslanov, M., & Şirvan, E. (2025). Global Trends and Strategic Insights in Green Aviation: A Comprehensive Bibliometric and SWOT Analysis (2000–2024). European Archives of Social Sciences, 2(2). https://doi.org/10.35365/eass.25.02.06