电池(电)
材料科学
阴极
降级(电信)
纳米技术
钥匙(锁)
储能
能量密度
电解质
电压
电化学
高压
数码产品
计算机科学
解码方法
工程物理
设计要素和原则
电化学储能
能量(信号处理)
系统工程
结构完整性
高能
表面改性
有机自由基电池
作者
Zezhou Lin,Ying,Huangxu Li,Yanhao Ren,Tiancheng Liu,Peiyu Hou,Haitao Huang
标识
DOI:10.1002/adma.202523570
摘要
ABSTRACT Li‐ion batteries (LIBs) employing the commercially established LiCoO 2 (LCO) cathode continue to dominate the market for portable electronic devices. Enhancing their volumetric energy density is crucial for extending the operational duration of advanced smart devices. One direct approach to increasing both specific capacity and energy density involves elevating the cut‐off charging voltage to above 4.6 V (vs Li/Li + ). However, high‐voltage operation induces severe material degradation and battery failure, impeding further development of high‐voltage LCO technologies. This review first emphasizes the growing necessity for high‐voltage cathodes in contemporary LIBs, followed by a detailed exploration of the failure mechanisms of LCO at voltages up to 4.6 V. A systematic evaluation of emerging stabilization strategies is provided, covering foreign‐ion (co‐)doping, surface modifications, structural design, and electrolyte additives, all aimed at enhancing their structural integrity and electrochemical performance. Innovative battery design approaches and modification strategies for LCO‐based full cells are also discussed. Finally, the review concludes by identifying key scientific challenges and proposing targeted research avenues to enable high‐energy and durable LIBs using high‐voltage LCO. This review aims to offer guiding principles with significant implications for the rational design and development of high‐voltage cathode materials for advanced LIBs.
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