Open Access
Issue
MATEC Web Conf.
Volume 420, 2026
International Conference on Material Physics, Chemistry and New Energy (MPCNE 2026)
Article Number 01018
Number of page(s) 7
Section Advanced Battery Technologies and Energy Storage Systems
DOI https://doi.org/10.1051/matecconf/202642001018
Published online 08 May 2026
  1. S. Cao, J. Wang, F. Lu, et al., Research progress on failure mechanisms and modification of cathode materials for lithium-ion batteries. New Chemical Materials 53, 7–14 (2025). [Google Scholar]
  2. Y. Lyu, X. Wu, K. Wang, et al., An overview on the advances of LiCoO2 cathodes for lithium - ionbatteries. Advanced Energy Materials 11, 2000982 (2021). [Google Scholar]
  3. J. Gao, et al., Single-crystal nickel-rich cathode materials: fundamentals, challenges and prospects. Chemical Communications 61, 13780–13794 (2025). [Google Scholar]
  4. D. Li, et al., Degradation mechanisms and modification strategies of nickel-rich NCM cathode in lithium-ion batteries. Materials Research Express 11, 012006 (2024). [Google Scholar]
  5. C.-G. Shi, et al., Investigation and suppression of oxygen release by LiNi0·8Co0·1Mn0·1O2 cathode under overcharge conditions. Advanced Energy Materials 12, 2200569 (2022). [Google Scholar]
  6. S. Aslam, L. Hou, Q. Liu, W. He, D. Mu, L. Li, R. Chen, F. Wu, Lithium rich layered oxide: exploring structural integrity, electrochemical behavior, performance failures and enhancement strategies through doping and coating. Energy Storage Materials 79, 104325 (2025). [Google Scholar]
  7. Z. Cui, X. Li, X. Bai, X. Ren, X. Ou, A comprehensive review of foreign-ion doping and recent achievements for nickel-rich cathode materials. Energy Storage Materials 57, 14–43 (2023). [Google Scholar]
  8. F. Lin, I.M. Markus, D. Nordlund, T.C. Weng, M.D. A.H.L. Xin, M.M. Doeff, Surface reconstruction and chemical evolution of stoichiometric layered cathode materials for lithium-ion batteries. Nature Communications 5, 3529 (2014). [Google Scholar]
  9. J. Zheng, et al., Ni/Li disordering in layered transition metal oxide: electrochemical impact, origin, and control. Accounts of Chemical Research 52(8), 2201–2209 (2019). [Google Scholar]
  10. Z. Liu, Y. Zhang, S. Pan, et al., Addressing the fundamental issues in Ni-rich cathodes: degradation mechanisms and mitigation strategies. Energy & Environmental Science (2026). [Google Scholar]
  11. S.B. Lee, N.Y. Park, G.T. Park, et al., Doping strategy in developing Ni-rich cathodes for high-performance lithium-ion batteries. ACS Energy Letters 9, 740–747 (2024). [Google Scholar]
  12. M. Dong, et al., Metallurgy inspired formation of homogeneous AfOs coating layer to improve the electrochemical properties of LiNi0.8Co0.1Mn0.1O2 cathode material. ACS Sustainable Chemistry & Engineering 5, 10199–10205 (2017). [Google Scholar]
  13. J. Xu, X. Chen, C. Wang, et al., Nano-Y2O3-coated LiNi0.5Co0.2Mn0.3O2 cathodes with enhanced electrochemical stability under high cut-off voltage and high temperature. Ceramics International 43, 11848–11854 (2017). [Google Scholar]
  14. P. Yan, J. Zheng, J. Liu, B. Wang, X. Cheng, Y. Zhang, X. Sun, C. Wang, J.G. Zhang, Tailoring grain boundary structures and chemistry of Ni-rich layered cathodes for enhanced cycle stability of lithium-ion batteries. Nature Energy 3, 600–605 (2018). [Google Scholar]
  15. Z. Wu, C. Zhang, F. Yuan, et al., Ni-rich cathode materials for stable high-energy lithium-ion batteries. Nano Energy 126, 109620 (2024). [Google Scholar]

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