卤化物
高压
快离子导体
电解质
阴极
格子(音乐)
高能
电压
材料科学
化学工程
化学物理
化学
无机化学
工程物理
物理
电气工程
电极
物理化学
工程类
声学
作者
Zhenyou Song,Tengrui Wang,Hua Yang,Wang Hay Kan,Yuwei Chen,Qianqian Yu,Likuo Wang,Yini Zhang,Yiming Dai,Huaican Chen,Wen Yin,T. Honda,Maxim Avdeev,Henghui Xu,Jiwei Ma,Yunhui Huang,Wei Luo
标识
DOI:10.1038/s41467-024-45864-1
摘要
Abstract Stable solid electrolytes are essential to high-safety and high-energy-density lithium batteries, especially for applications with high-voltage cathodes. In such conditions, solid electrolytes may experience severe oxidation, decomposition, and deactivation during charging at high voltages, leading to inadequate cycling performance and even cell failure. Here, we address the high-voltage limitation of halide solid electrolytes by introducing local lattice distortion to confine the distribution of Cl − , which effectively curbs kinetics of their oxidation. The confinement is realized by substituting In with multiple elements in Li 3 InCl 6 to give a high-entropy Li 2.75 Y 0.16 Er 0.16 Yb 0.16 In 0.25 Zr 0.25 Cl 6 . Meanwhile, the lattice distortion promotes longer Li-Cl bonds, facilitating favorable activation of Li + . Our results show that this high-entropy halide electrolyte boosts the cycle stability of all-solid-state battery by 250% improvement over 500 cycles. In particular, the cell provides a higher discharge capacity of 185 mAh g −1 by increasing the charge cut-off voltage to 4.6 V at a small current rate of 0.2 C, which is more challenging to electrolytes|cathode stability. These findings deepen our understanding of high-entropy materials, advancing their use in energy-related applications.
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