Promoting Surface Electric Conductivity for High-Rate LiCoO 2

The cathode materials work as the host framework for both Li diffusion and electron transport in Li-ion batteries. The Li diffusion property is always the research focus, while the electron transport property is less studied. Herein, we propose a unique strategy to elevate the rate performance throu...

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Veröffentlicht in:Angewandte Chemie International Edition 2023-03, Vol.62 (10), p.e202218595
Hauptverfasser: Xu, Shenyang, Tan, Xinghua, Ding, Wangyang, Ren, Wenju, Zhao, Qi, Huang, Weiyuan, Liu, Jiajie, Qi, Rui, Zhang, Yongxin, Yang, Jiachao, Zuo, Changjian, Ji, Haocheng, Ren, Hengyu, Cao, Bo, Xue, Haoyu, Gao, Zhihai, Yi, Haocong, Zhao, Wenguang, Xiao, Yinguo, Zhao, Qinghe, Zhang, Mingjian, Pan, Feng
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Sprache:eng
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Zusammenfassung:The cathode materials work as the host framework for both Li diffusion and electron transport in Li-ion batteries. The Li diffusion property is always the research focus, while the electron transport property is less studied. Herein, we propose a unique strategy to elevate the rate performance through promoting the surface electric conductivity. Specifically, a disordered rock-salt phase was coherently constructed at the surface of LiCoO , promoting the surface electric conductivity by over one magnitude. It increased the effective voltage (V ) imposed in the bulk, thus driving more Li extraction/insertion and making LiCoO exhibit superior rate capability (154 mAh g at 10 C), and excellent cycling performance (93 % after 1000 cycles at 10 C). The universality of this strategy was confirmed by another surface design and a simulation. Our findings provide a new angle for developing high-rate cathode materials by tuning the surface electron transport property.
ISSN:1433-7851
1521-3773
DOI:10.1002/anie.202218595