Recent Advances in Oxygen Redox Activity of Lithium‐Rich Manganese‐Based Layered Oxides Cathode Materials: Mechanism, Challenges and Strategies

Author:

Jin Yanling12,Zhao Zirui1,Ren Peng‐Gang1,Zhang Baofeng3,Chen Zhengyan1,Guo Zhengzheng1,Ren Fang1,Sun Zhenfeng1,Liu Shanhui1,Song Ping1,Yang Huijuan2,Xu Kaihua4,Li Xifei25ORCID

Affiliation:

1. Faculty of Printing Packaging Engineering and Digital Media Technology Xi'an University of Technology Jinhua South Road No.5 Xi'an Shaanxi Province 710048 P. R. China

2. Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy & School of Materials Science and Engineering Xi'an University of Technology Xi'an 710048 China

3. Hubei Key Laboratory of Automotive Power Train and Electronic Control School of Automotive Engineering Hubei University of Automotive Technology Shiyan Hubei Province 442002 China

4. GEM Co., Ltd Shenzhen Guangdong Province 518101 China

5. Guangdong Yuanneng Technologies Co Ltd Foshan Guangdong Province 528223 China

Abstract

AbstractLithium‐rich manganese‐based layered oxides (LRMOs) have been regarded as a promising category of cathode materials due to their high specific capacity on basis of joint anionic(oxygen) /cationic redox chemistry at a high voltage, thus high energy density. The anionic redox play the key and restive roles in LRMOs, contributing the extra capacity, meanwhile being associated with several unfavorable structural and electrochemical issues. This work systematically enumerates the oxygen redox mechanisms, and challenges associated with oxygen‐anion redox in LRMOs, including irreversible transition metal migration, phase transition, and the capacity/voltage decay, etc. The recent progress made in modification of LRMOs with particular emphasis to promoting the reversible oxygen redox reaction and inhibiting the irreversible oxygen release are summarized, followed by an outlook on the future rational design and development of LRMOs. This comprehensive review and perspective are expected to provide insights for the greater utilization of oxygen redox in LRMOs and other related materials.

Funder

National Natural Science Foundation of China

Natural Science Basic Research Program of Shaanxi Province

Publisher

Wiley

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