Modulating Surface Structural Evolution of LiCoO<sub>2</sub> for Enhanced Extreme Fast-Charging Durability.

Du, Yuhao; Zhao, Wenguang; Li, Zijian; Ren, Hengyu; Yi, Haocong; Wu, Shengyu; Wang, Jun; Pan, Feng et al. · ACS Nano · 2025

basic_science · Level V

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Abstract

The applied cathodes in lithium-ion batteries usually suffer from severe structural degradation upon fast charging, and the correlated mechanism still remains vague. Here, we reveal the surface structural evolution of LiCoO<sub>2</sub> (LCO) during cycling at 4.6 V vs Li/Li<sup>+</sup> with an extreme high fast-charging current of 10 C. Fast charging induces surface heterogeneous delithiation, promoting nonuniform surface phase transitions and resulting in the formation of a triphase hybrid on the charged surface. The triphase hybrid consists of the layered, spinel, and rock-salt (RS) phases. As cycling proceeds, this triphase hybrid propagates gradually toward the bulk, accompanied by a progressive thickening of the surface RS phase, leading to deteriorated Li<sup>+</sup> transport kinetics and accelerated capacity fading. Thus, suppressing the heterogeneous Li<sup>+</sup> delithiation of LCO is crucial for enhancing fast-charging durability. By applying a uniform and robust surface coating, the surface delithiation homogeneity upon extreme fast charging is significantly improved, and the thickening of the surface Li<sup>+</sup>-blocking RS phase is greatly reduced, thereby achieving enhanced cycling stability of LCO. This work benefits the development of more advanced LCO cathodes tailored for fast-charging applications.