A Review of Cathode Materials for Lithium-ion Batteries and Future Prospects
DOI:
https://doi.org/10.61173/pqkcmv98Keywords:
lithium-ion batteries, cathode material, lithium storageAbstract
Lithium-ion battery (LIB) is widely used in electric vehicles, computers, mobile phones and other electronic products because of its high energy density, good rate performance and long life. This paper concentrates on the research of cathode materials for lithium-ion batteries. Through literature review and comparative analysis, four commonly used cathode materials for lithium-ion batteries are evaluated, including lithium cobalt oxide (LiCoO₂), lithium manganese oxide (LiMn₂O₄), Ferrous lithium phosphate (LiFePO₄) and emerging nickel-rich ternary materials (NCM and NCA) from the perspective of structure and performance. These materials are unique, but they all have some shortcomings and face some challenges. This paper further outlines the future research direction for cathode material, including the exploration and development of new materials and technology, as well as environmental and sustainability concerns. Finally, this paper concludes that the future development of cathode materials for lithium-ion batteries will depend on interdisciplinary cooperation and innovation to realize more efficient, safer and more environmentally friendly energy storage technology.References
[1] Kim, Taehoon, Wentao Song, Dae-Yong Son, Luis K. Ono, and Yabing Qi. 2019. “Lithium-Ion Batteries: Outlook on Present, Future, and Hybridized Technologies.” Journal of Materials Chemistry A 7 (7): 2942–64.
[2] Murphy, D W, J Broadhead, and H Steele. 1980. Materials for Advanced Batteries. Springer EBooks. Springer Nature.
[3] Weiss, Manuel, Raffael Ruess, Johannes Kasnatscheew, Yehonatan Levartovsky, Natasha Ronith Levy, Philip Minnmann, Lukas Stolz, et al. 2021. “Fast Charging of Lithium‐ Ion Batteries: A Review of Materials Aspects.” Advanced Energy Materials 11 (33): 2101126.
[4] Jin, Shan, Deying Mu, Ziang Lu, Ruhong Li, Zhu Liu, Yue Wang, Shuang Tian, and Changsong Dai. 2022. “A Comprehensive Review on the Recycling of Spent Lithium-Ion Batteries: Urgent Status and Technology Advances.” Journal of Cleaner Production 340 (March): 130535.
[5] Mizushima, K., P.C. Jones, P.J. Wiseman, and J.B. Goodenough. 1980. “LixCoO2 (0.” Materials Research Bulletin 15 (6): 783–89. https://doi.org/10.1016/0025-5408(80)90012-4.
[6] Qin, Changdong, Yuyuan Jiang, Pengfei Yan, and Manling Sui. 2020. “Revealing the Minor Li-Ion Blocking Effect of LiCoO2 Surface Phase Transition Layer.” Journal of Power Sources 460 (June): 228126.
[7] Nitta, Naoki, Feixiang Wu, Jung Tae Lee, and Gleb Yushin. 2015. “Li-Ion Battery Materials: Present and Future.” Materials Today 18 (5): 252–64.
[8] Zhan, Chun, Tianpin Wu, Jun Lu, and Khalil Amine. 2018. “Dissolution, Migration, and Deposition of Transition Metal Ions in Li-Ion Batteries Exemplified by Mn-Based Cathodes – a Critical Review.” Energy & Environmental Science 11 (2): 243–57.
[9] Padhi, A. K. 1997. “Phospho-Olivines as Positive-Electrode Materials for Rechargeable Lithium Batteries.” Journal of the Electrochemical Society 144 (4): 1188.
[10] Yuan, Li-Xia, Zhao-Hui Wang, Wu-Xing Zhang, Xian-Luo Hu, Ji-Tao Chen, Yun-Hui Huang, and John B. Goodenough. 2011. “Development and Challenges of LiFePO4 Cathode Material for Lithium-Ion Batteries.” Energy & Environmental Science 4 (2): 269–84.
[11] Dyer, Lawrence D, B Borie, and G. Pedro Smith. 1954. “Alkali Metal-Nickel Oxides of the Type MNiO2.” Journal of the American Chemical Society 76 (6): 1499–1503.
[12] Wang, Xinxin, Yuan‐Li Ding, Ya‐Ping Deng, and Zhongwei Chen. 2020. “Ni‐Rich/Co‐Poor Layered Cathode for Automotive Li‐Ion Batteries: Promises and Challenges.” Advanced Energy Materials 10 (12): 1903864.
[13] Dixit, Mudit, Boris Markovsky, Florian Schipper, Doron Aurbach, and Dan T. Major. 2017. “Origin of Structural Degradation during Cycling and Low Thermal Stability of Ni- Rich Layered Transition Metal-Based Electrode Materials.” The Journal of Physical Chemistry C 121 (41): 22628–36.
[14] Liu, S., Yao, L., Zhang, Q., Li, L. L., Hu, N. T., Wei, L. M., & Wei, H. (2017). Advances in high-performance lithium-sulfur batteries. Acta Physico-Chimica Sinica, 33(12), 2339-2358.
[15] Feng, Xuning, Siqi Zheng, Dongsheng Ren, Xiangming He, Li Wang, Xiang Liu, Maogang Li, and Minggao Ouyang. 2019. “Key Characteristics for Thermal Runaway of Li-Ion Batteries.” Energy Procedia 158 (February): 4684–89.
Downloads
Published
Issue
Section
License
Copyright (c) 2024 by the authors.

This work is licensed under a Creative Commons Attribution 4.0 International License.
