材料科学
电解质
阴极
钝化
阳极
化学工程
涂层
氧化物
碳酸二甲酯
电极
纳米技术
冶金
电气工程
图层(电子)
催化作用
生物化学
化学
物理化学
工程类
作者
Tianju Fan,Kai Wang,Villa Krishna Harika,Cunsheng Liu,Amey Nimkar,Nicole Leifer,Sandipan Maiti,Judith Grinblat,Merav Nadav Tsubery,Xiaolang Liu,Meng Wang,Leimin Xu,Yuhao Lu,Yonggang Min,Netanel Shpigel,Doron Aurbach
标识
DOI:10.1002/adfm.202204972
摘要
Abstract The need for high power density cathodes for Li‐ion batteries can be fulfilled by application of a high charging voltage above 4.5 V. As lithium cobalt oxide (LCO) remains a dominant commercial cathode material, tremendous efforts are invested to increase its charging potential toward 4.6 V. Yet, the long‐term performance of high voltage LCO cathodes still remains poor. Here, an integrated approach combining the application of an aluminum fluoride coating and the use of electrolyte solutions comprising 1:1:8 mixtures of difluoroethylene:fluoroethylene carbonate:dimethyl carbonate and 1 m LiPF 6 is reported. This results in superior behavior of LCO cathodes charged at 4.6 V with high initial capacity of 223 mAh g −1 , excellent long‐term performance, and 78% capacity retention after 500 cycles. Impressive stability is also found at 450 °C with an initial capacity of 220 mAh g −1 and around 84% capacity retention after 100 cycles. Systematic post‐mortem analysis of LCO cathodes and Li anodes after prolonged cycling reveals two main degradation routes related to changes at the surface of the cathodes and formation of passivation layers on the anodes. This study demonstrates the importance of appropriate selection of electrolyte solutions and development of effective coatings for improved performance of high voltage LCO‐based Li batteries.
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