Types and research progress of cathode materials for sodium ion batteries

Authors

  • Yuanzhong Zhang

DOI:

https://doi.org/10.61173/2qyavr39

Keywords:

Energy and environment, sodium-ion batteries, cathode materials, electrical energy storage

Abstract

With the increasingly severe global energy problem, green and new energy enterprises are vigorously developing. Lithium-ion batteries in the field of energy storage have to look for other materials due to their resource shortage and market risk of price fluctuations. Therefore, sodium-ion batteries bring a new perspective to mankind to solve the global sustainable development problem, and hope to achieve unprecedented progress in the field of electrochemical energy storage in the future. In this paper, the working mechanism of sodium-ion batteries was studied and the concept of rocking chair batteries was introduced. Also, the cathode materials of sodium-ion batteries are systematically studied through different literatures, and three different materials are studied: polyanionic compounds, Prussian blue compounds and transition metal oxides. Specifically, the olivine structure and NASICON structure of poly-anion compounds, as well as the layered and tunnel types of transition metal oxides, are discussed. And provide the advantages and disadvantages of different cathode materials, as well as their development trends and prospects. This paper shows the structural stability, energy density and electron transport rate of mainstream materials, which is helpful to accelerate the commercialization of sodium-ion battery industry.

References

[1] Wang Youran. The Energy Crisis Will Have Multiple Impacts on the World. China Social Sciences Today,2023, 23(22) : 23-28.

[2] Wang Lin. The Energy Crisis is an Impetus for Green Transformation. China Energy News,2023, 34(23): 38-42.

[3] Yu Limin, Xie Jianing, Liu Gang The global development momentum of renewable energy is strong. People’s Daily,2023, 43(22):123445.

[4] Lin Shuijing. Will Sodium-ion Batteries Become the “latecomer”. China Energy News,2025, 56(32): 22-24.

[5] Hu Han, Tian Zhibin, Gong Rui Current Development Status and Countermeasures of Sodium-ion Energy Storage Technology. Hydropower and New Energy, 2025, 39(01):8-11.

[6] Liu Yulong, Cao Renke, Xia Jiyan, et al. Research Progress on Low-temperature Performance of Cathode Materials for High Specific Energy Sodium-ion Batteries. Electric Power Science and Technology & Environmental Protection, 2025, 41(03): 437- 452.

[7] Pan Wentao, Yu Xinling, Yang Xulai, et al. Sodium ion battery of the opportunities and challenges. Materials engineering, 2025, 43(7): 1-14.

[8] Ma Yonglong, Zhu Boqi. Research Progress on the Structure Dean&Francis Yuanzhong Zhang of Cathode Materials for Sodium-ion Batteries. Ship Power Technology, 2020, 45(05): 84-86.

[9] Yu Liu, You Li, Wang Gao, et al. Co-manipulation of ultrafine nanostructure and uniform carbon layer activates maricite-structured NaFePO4 as a high-performance cathode for sodium-ion batteries. Small Sci, 2023, 3(12): 2300122.

[10] Saravanan K, Mason C W, Rudola A, et al. The first report on excellent cycling stability and superior rate capability of Na3V2(PO4)3 for sodium ion batteries. Adv Energy Mater, 2013, 3(4): 444-450.

[11] Xie Weichao, Wu Jianchao, Tang Zhaohui, et al. Deficiencies and Improvements of Poly-anion Cathode Materials for Sodium-ion Batteries. Battery, 2024, 54(06): 873-878.

[12] Wu Danyan. Research on Materials of Sodium-Ion Batteries and Exploration of Cycle Stability Optimization. Times Auto, 2025, 23(11):153-155.

[13] Wang Qinggui, Zhu Xin, Wang Tianhua, et al. Current Development Status of Sodium-ion batteries. Times Auto, 2023, 43(12):129-131.

[14] Zhang Siqiang, Shu Weiping, Liu Ye, et al. Research Progress on Coating Modification of Layered Transition Metal Oxide Cathode Materials for Sodium-ion Batteries. New chemical materials, 2025, 23(33): 44-46.

Downloads

Published

2025-10-23