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International Journal of Creative and Open Research in Engineering and Management

A Peer-Reviewed, Open-Access International Journal Supporting Multidisciplinary Research, Digital Publishing Standards, DOI Registration, and Academic Indexing.
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ISSN: 3108-1754 (Online)
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ISO Certification: 9001:2015
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Peer Review: Double Blind
Volume 02, Issue 8

Published on: August 2026

EMERGING POST-LITHIUM BATTERY TECHNOLOGIES FOR SUSTAINABLE AND ECO-FRIENDLY ELECTRIC VEHICLES

Dr. Prashant Kohli

Department of Physics


N.M.S.N. Dass (P.G.) College Budaun

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Plagiarism Passed Peer Reviewed Open Access

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Abstract

The rapid global expansion of electric vehicle (EV) adoption has intensified scrutiny of the lithium-ion battery (LIB) supply chain, exposing acute vulnerabilities related to critical mineral scarcity, geographically concentrated cobalt and lithium extraction, and end-of-life environmental burdens. This study examines the current landscape of post-lithium battery technologies, including sodium-ion, magnesium-ion, zinc-ion, aluminum-ion, solid-state lithium-metal, lithium-sulfur, and metal-air chemistries, as candidate replacements or complements to conventional LIBs in eco-friendly EV applications. Each chemistry is evaluated against a common set of criteria: gravimetric and volumetric energy density, cycle life, cost and raw material abundance, safety characteristics, and recyclability. Comparative data, presented in tabular and graphical form, indicate that while no single post-lithium chemistry currently matches the overall performance envelope of state-of-the-art LIBs, several technologies offer compelling advantages in sustainability, cost, and safety that make them strong candidates for specific EV segments, including short-range urban vehicles, stationary-to-mobile hybrid platforms, and next-generation long-range vehicles once solid-state architectures mature. The study concludes that a diversified, multi-chemistry battery ecosystem, rather than a single successor to lithium-ion, is the most plausible pathway toward a sustainable electrified transportation sector, and it identifies key research priorities including electrolyte stability, cathode design, manufacturing scalability, and standardized life-cycle assessment methodologies.

How to Cite this Paper

Kohli, P. (2026). Emerging Post-Lithium Battery Technologies for Sustainable and Eco-Friendly Electric Vehicles. International Journal of Creative and Open Research in Engineering and Management, <i>02</i>(8), 1-9. https://doi.org/10.55041/ijcope.v2i8.009

Kohli, Prashant. "Emerging Post-Lithium Battery Technologies for Sustainable and Eco-Friendly Electric Vehicles." International Journal of Creative and Open Research in Engineering and Management, vol. 02, no. 8, 2026, pp. 1-9. doi:https://doi.org/10.55041/ijcope.v2i8.009.

Kohli, Prashant. "Emerging Post-Lithium Battery Technologies for Sustainable and Eco-Friendly Electric Vehicles." International Journal of Creative and Open Research in Engineering and Management 02, no. 8 (2026): 1-9. https://doi.org/https://doi.org/10.55041/ijcope.v2i8.009.

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References


  1. Choi, J. W., & Aurbach, D. (2016). Promise and reality of post-lithium-ion batteries with high energy densities. Nature Reviews Materials, 1(4), 16013.

  2. Vaalma, C., Buchholz, D., Weil, M., & Passerini, S. (2018). A cost and resource analysis of sodium-ion batteries. Nature Reviews Materials, 3(4), 18013.

  3. Manthiram, A., Chung, S. H., & Zu, C. (2015). Lithium-sulfur batteries: progress and prospects. Advanced Materials, 27(12), 1980-2006.

  4. Janek, J., & Zeier, W. G. (2016). A solid future for battery development. Nature Energy, 1(9), 16141.

  5. Muldoon, J., Bucur, C. B., & Gregory, T. (2014). Quest for nonaqueous multivalent secondary batteries: magnesium and beyond. Chemical Reviews, 114(23), 11683-11720.

  6. Song, J., Xu, K., Liu, N., Reed, D., & Li, X. (2021). Crossing the valley of death: opportunities and challenges for post-lithium-ion batteries. ACS Energy Letters, 6(1), 1-6.

  7. Blomgren, G. E. (2017). The development and future of lithium ion batteries. Journal of the Electrochemical Society, 164(1), A5019.

  8. Yang, C., Ji, X., Fan, X., Gao, T., Suo, L., Wang, F., ... & Wang, C. (2017). Flexible aqueous Li-ion battery with high energy and power densities. Advanced Materials, 29(44), 1701972.

  9. Li, M., Lu, J., Chen, Z., & Amine, K. (2018). 30 years of lithium-ion batteries. Advanced Materials, 30(33), 1800561.

  10. Gielen, D., & Lyons, M. (2022). Critical materials for the energy transition: Cobalt. International Renewable Energy Agency (IRENA) Report.

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  • Published on: Aug 05 2026
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