材料科学
阴极
电解质
溶解
电化学
相间
氧化物
化学工程
纳米技术
电极
物理化学
化学
遗传学
生物
工程类
冶金
作者
Ziqing Yao,Tianji Fu,Tingrui Pan,Zhongwei Jiang,Fan Xu,Shuangke Liu,Qingpeng Guo,Yujie Li,Chunman Zheng,Weiwei Sun
标识
DOI:10.1002/adfm.202408152
摘要
Abstract High‐voltage LiCoO 2 (LCO) attracts great interest due to its high theoretical capacity, however, the aggravated oxygen redox, Co dissolution, and lattice degradation at high voltage potentially induce the instability of crystal structural and cathode–electrolyte interphase, and can ultimately lead to severe capacity fading. Herein, a design strategy of spin modulation is presented to stabilize the surface and bulk structure of the commercial LiCoO 2 (C‐LCO). The prepared high‐spin state LiCoO 2 via crystal field modulation elevates the Co─O band gap, suppresses the electronic compensation of oxygen at high voltage, and reduces the side reactions of reactive oxygen and dissolved Co ions with the electrolyte, which greatly restrains the irreversible phase transition from O3 to H1‐3 and the degeneration of cathode–electrolyte interphase. As a result, the spin‐modulated LiCoO 2 shows significantly improved electrochemical performances including high discharge capacity, stable cycling behavior, and enhanced rate capability. This work based on spin modification by crystal field modulation can apply to other layered transition metal oxide cathodes, providing a new avenue for developing high‐energy–density cathodes.
科研通智能强力驱动
Strongly Powered by AbleSci AI