降级(电信)
氧化物
阴极
离子
钠
材料科学
化学工程
纳米技术
化学
计算机科学
冶金
工程类
电信
有机化学
物理化学
作者
Yong Li,Guoliang Liu,Jiangxuan Che,Liping Chen,Li Wang,Li Wang,Lanlan Lei,Jie Hou,Shuyue Li,Juan Wang,Yunhua Xu,Yufeng Zhao
摘要
Abstract Exploiting high‐capacity cathode materials with superior reliability is vital to advancing the commercialization of sodium‐ion batteries (SIBs). Layered oxides, known for their eco‐friendliness, adaptability, commercial viability, and significant recent advancements, are prominent cathode materials. However, electrochemical cycling over an extended period can trigger capacity fade, voltage hysteresis, structural instability, and adverse interface reactions which shorten the battery life and cause safety issues. Thus, it is essential to require an in‐depth understanding of degradation mechanisms of layered oxides. In this review, the crystal and electronic structures of layered oxides are revisited first, and a renewed understanding is also presented. Three critical degradation mechanisms are highlighted and deeply discussed for layered oxides, namely Jahn–Teller effect, phase transition, and surface decomposition, which are directly responsible for the inferior electrochemical performances. Furthermore, a comprehensive overview of recently reported modification strategies related to degradation mechanisms are proposed. Additionally, this review discusses challenges in practical application, primarily from a degradation mechanism standpoint. Finally, it outlines future research directions, offering perspectives to further develop superior layered cathode materials for SIBs, driving the industrialization of SIBs.
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