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一种抑制全固态锂电池富镍阴极电化学机械失效的双功能化学力学策略

A Bifunctional Chemomechanics Strategy To Suppress Electrochemo-Mechanical Failure of Ni-Rich Cathodes for All-Solid-State Lithium Batteries.

作者信息

Sun Xingwei, Wang Longlong, Ma Jun, Yu Xinrun, Zhang Shu, Zhou Xinhong, Cui Guanglei

机构信息

Qingdao Industrial Energy Storage Research Institute, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao 266101, China.

College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, China.

出版信息

ACS Appl Mater Interfaces. 2022 Apr 20;14(15):17674-17681. doi: 10.1021/acsami.2c02678. Epub 2022 Apr 8.

Abstract

Electrochemo-mechanical failure of Ni-rich cathodes leads to rapid performance degradation, and thus hinders their practical implementation in all-solid-state lithium batteries (ASSLBs). To solve this problem, herein, we propose a bifunctional chemomechanics strategy by protecting polycrystalline LiNiCoMnO (NCM) cathodes using a high-mechanical-strength fast ionic conductor LiZr(PO) (LZP) coating layer. The coating layer's synergistic effect between mechanical strength and electrochemical stability is studied in LiPSCl (LPSCl)-based ASSLBs for the first time. Using finite element method (FEM) simulations and various characterization techniques, we demonstrate that the robust and stable LZP (Young's modulus 140.7 GPa, electrochemical stability window >5 V) coating layer mitigates the volume change and particle disintegration of polycrystalline NCM and electrochemical decomposition of LPSCl on the LPSCl/NCM interface. As a result, the LZP-modified ASSLBs display remarkably improved reversible capacity, cycle life, and rate performance. The synergy of mechanical and electrochemical properties of the coating layer will provide valuable guidance for the development of high-energy-density ASSLBs.

摘要

富镍阴极的电化学-机械失效会导致性能迅速下降,从而阻碍其在全固态锂电池(ASSLB)中的实际应用。为了解决这个问题,在此我们提出一种双功能化学力学策略,即使用高机械强度的快离子导体LiZr(PO)(LZP)涂层来保护多晶LiNiCoMnO(NCM)阴极。首次在基于LiPSCl(LPSCl)的ASSLB中研究了涂层在机械强度和电化学稳定性之间的协同效应。通过有限元方法(FEM)模拟和各种表征技术,我们证明了坚固且稳定的LZP(杨氏模量140.7 GPa,电化学稳定性窗口>5 V)涂层减轻了多晶NCM的体积变化和颗粒分解以及LPSCl在LPSCl/NCM界面上的电化学分解。结果,LZP改性的ASSLB表现出显著改善的可逆容量、循环寿命和倍率性能。涂层的机械和电化学性能的协同作用将为高能量密度ASSLB的开发提供有价值的指导。

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