Inverse Spinel-Structured Mg2MnO4 Coating to Enable Superior Thermal Stability of LiNi0.83Co0.12Mn0.05O2 Cathodes for Lithium-Ion Batteries

尖晶石 材料科学 阴极 涂层 电解质 热稳定性 化学工程 晶间腐蚀 温度循环 电化学 锂(药物) 复合材料 腐蚀 热的 冶金 电极 化学 医学 物理 物理化学 气象学 工程类 内分泌学
作者
Guihui Yu,Bi Luo,Shilin Su,Qi Wang,Weijie Ji,Dezhao Peng,Zihang Liu,Xiaowei Wang,Zaowen Zhao,Jiafeng Zhang
出处
期刊:ACS Sustainable Chemistry & Engineering [American Chemical Society]
卷期号:11 (42): 15282-15293 被引量:4
标识
DOI:10.1021/acssuschemeng.3c03460
摘要

Ni-richlayered oxides are commonly used as cathode materials in lithium-ion batteries due to their high energy density. However, these materials suffer from rapid capacity decay and inferior thermal stability during charging and discharging, caused by intergranular cracks, undesirable side reactions, and irreversible rock salt phase formation. Herein, we propose a facile surface engineering modification strategy using a Mg2MnO4 (MMO) coating to improve the cycling performance and thermal stability of Ni-rich cathode materials. Owing to the high structural stability of the inverse spinel structure of the MMO shell, the MMO coating acts as a physical barrier, protecting the particles from electrolyte corrosion and inhibiting intergranular cracks, thus maintaining the structural integrity of the MMO-coated Ni-rich cathode material during long-term cycling, even under harsh cycling conditions. Our electrochemical performance tests confirm that the MMO-coated Ni-rich cathode material demonstrates superior cycling and thermal stability, achieving an excellent capacity of 188.5 mA h g–1 after 200 cycles with a capacity retention of 92.7% at 50 °C. Notably, the pouch-type full cell displays outstanding performance, achieving a capacity retention of 86.2% after 400 cycles at 50 °C. Our work offers valuable insights into the development of Ni-rich cathode materials for promising applications in electric vehicles.
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