Unravelling the Enhanced High‐Temperature Performance of Lithium‐Rich Oxide Cathode with Methyl Diphenylphosphinite as Electrolyte Additive
Unravelling the Enhanced High‐Temperature Performance of Lithium‐Rich Oxide Cathode with Methyl Diphenylphosphinite as Electrolyte Additive
复制标题
DOI:
10.1002/celc.201800061
复制
发表时间:
2018-06
期刊:
影响因子:
--
通讯作者:
Shuaifeng Lou;M. Yulin;Zhenxing Zhou;Hua Huo;Pengjian Zuo;Xinqun Cheng;X. Qu;Yunzhi Gao;C. Du
中科院分区:
文献类型:
--
作者:
Shuaifeng Lou;M. Yulin;Zhenxing Zhou;Hua Huo;Pengjian Zuo;Xinqun Cheng;X. Qu;Yunzhi Gao;C. Du
Lithium‐rich oxide cathode materials with high energy density attract much attention, however, they tend to suffer from serious capacity fading during cycling, especially at elevated temperature. Here, methyl diphenylphosphinite (MDP) is studied as electrolyte additive for the first time to enhance the capacity retention of lithium‐rich oxide cathode during cycling under high temperature. As a result, the cyclic stability of Li1.16Ni0.2Co0.1Mn0.54O2cathodes at elevated temperature is improved significantly when adopting 0.2 wt.% MDP, including an enhanced Columbic efficiency and capacity retention ratio promoted from 49.7 to 93.9 % after 80 cycles. Electrochemical and physical characterizations, combined with theoretical calculations, demonstrate that MDP tends to adsorb on the cathode surfacedue to the interaction between the P−O− species and transition‐metal elements, and then is oxidized preferentially at around 3.75 V (vs. Li/Li+), in situ forming a robust artificial interphase layer on the surface of the cathode. The interphases can effectively inhibit the electrolyte decomposition and greatly enhance the interface stability between Li1.16Ni0.2Co0.1Mn0.54O2and the electrolyte at high voltage and high temperature.