材料科学
表面改性
涂层
接口(物质)
氧化物
锂(药物)
纳米技术
阴极
兴奋剂
化学工程
电解质
电极
降级(电信)
工程物理
计算机科学
光电子学
复合材料
冶金
物理化学
电信
工程类
毛细管作用
化学
内分泌学
医学
毛细管数
作者
Longwei Liang,Wenheng Zhang,Fei Zhao,Dienguila Kionga Denis,Fakhr uz Zaman,Linrui Hou,Changzhou Yuan
标识
DOI:10.1002/admi.201901749
摘要
Abstract Nickel‐rich layered transition‐metal oxides with high‐capacity and high‐power capabilities are established as the principal cathode candidates for next‐generation lithium‐ion batteries. However, several intractable issues such as the poor thermal stability and rapid capacity fade as well as the air‐sensitivity particularly for the Ni content over 80% have seriously restricted their broadly practical applications. The properties and nature of the stable surface/interface, where the Li + shuttles back and forth between the cathode and electrolyte, play a significant role in their ultimate lithium‐storage performance and industrial processability. Thus, tremendous efforts are made to in‐depth understanding of the essential origins of surface/interface structure degradation and efficient surface modification methodologies are intensively explored. The purpose of the contribution is first to provide a comprehensive review of the up‐to‐date mechanisms proposed to rationally elucidate the surface/interface behaviors, and then, focus on recent developed strategies to optimize the surface/interface structure and chemistry including synthetic condition regulation, surface doping, surface coating, dual doping‐coating modification, and concentration‐gradient structure as well as electrolyte additives. Finally, the perspective on future research trends and feasible approaches toward advanced Ni‐rich cathodes with stable surface/interface is presented briefly.
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