镍
阴极
化学物理
相(物质)
离子
材料科学
透射电子显微镜
电化学
相变
锂(药物)
扩散
纳米技术
结晶学
化学
凝聚态物理
电极
冶金
热力学
物理化学
物理
内分泌学
医学
有机化学
作者
Shuang Li,Zhenpeng Yao,Jianming Zheng,Maosen Fu,Jiajie Cen,Sooyeon Hwang,Huile Jin,Alexander Orlov,Lin Gu,Shun Wang,Zhongwei Chen,Dong Su
标识
DOI:10.1002/anie.202008144
摘要
Ni-rich LiNi1-x-y Mnx Coy O2 (NMC) layered compounds are the dominant cathode for lithium ion batteries. The role of crystallographic defects on structure evolution and performance degradation during electrochemical cycling is not yet fully understood. Here, we investigated the structural evolution of a Ni-rich NMC cathode in a solid-state cell by in situ transmission electron microscopy. Antiphase boundary (APB) and twin boundary (TB) separating layered phases played an important role on phase change. Upon Li depletion, the APB extended across the layered structure, while Li/transition metal (TM) ion mixing in the layered phases was detected to induce the rock-salt phase formation along the coherent TB. According to DFT calculations, Li/TM mixing and phase transition were aided by the low diffusion barriers of TM ions at planar defects. This work reveals the dynamical scenario of secondary phase evolution, helping unveil the origin of performance fading in Ni-rich NMC.
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