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Atomic-scale structural evolution of electrode materials in Li-ion batteries: a review

Journal

RARE METALS
Volume 39, Issue 3, Pages 205-217

Publisher

NONFERROUS METALS SOC CHINA
DOI: 10.1007/s12598-020-01369-6

Keywords

Li (de)insertion mechanism; Migration of transition metal ions; Surface structural evolution

Funding

  1. National Natural Science Foundation of China [51672307, 51421002]
  2. Strategic Priority Research Program of Chinese Academy of Sciences (CAS) [XDB07030200]
  3. Key Research Program of Frontier Sciences, CAS [QYZDB-SSW-JSC035]

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Owing to the high spatial resolution at the atomic scale, the transmission electron microscopy (TEM) or scanning transmission electron microscopy is demonstrated as a promising characterization method to unveil the charge storage mechanism of electrode materials in Li-ion batteries. The structural evolution of electrode materials during charge/discharge process can be directly observed by using TEM. The detailed analysis establishes a relationship between the structure of electrode material and battery performance. Herein, we present a brief review of the atomic-scale characterization in Li-ion batteries, including Li (de)insertion mechanism (both cations and anions charge-compensation mechanism), migration of transition metal ions, and surface phase transition. The in-depth microscopic analysis reveals the detailed structural characteristics, which influence the properties of LIBs, establish the structure-function relationship, and facilitate the development of Li-ion batteries.

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