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固态电池中锂金属剥离与电镀的界面原子机制

Interfacial Atomistic Mechanisms of Lithium Metal Stripping and Plating in Solid-State Batteries.

作者信息

Yang Menghao, Liu Yunsheng, Nolan Adelaide M, Mo Yifei

机构信息

Department of Materials Science and Engineering, University of Maryland, College Park, MD, 20742, USA.

Maryland Energy Innovation Institute, University of Maryland, College Park, MD, 20742, USA.

出版信息

Adv Mater. 2021 Mar;33(11):e2008081. doi: 10.1002/adma.202008081. Epub 2021 Feb 12.

Abstract

All-solid-state batteries based on a Li metal anode represent a promising next-generation energy storage system, but are currently limited by low current density and short cycle life. Further research to improve the Li metal anode is impeded by the lack of understanding in its failure mechanisms at lithium-solid interfaces, in particular, the fundamental atomistic processes responsible for interface failure. Here, using large-scale molecular dynamics simulations, the first atomistic modeling study of lithium stripping and plating on a solid electrolyte is performed by explicitly considering key fundamental atomistic processes and interface atomistic structures. In the simulations, the interface failure initiated with the formation of nano-sized pores, and how interface structures, lithium diffusion, adhesion energy, and applied pressure affect interface failure during Li cycling are observed. By systematically varying the parameters of solid-state lithium cells in the simulations, the parameter space of applied pressures and interfacial adhesion energies that inhibit interface failure during cycling are mapped to guide selection of solid-state cells. This study establishes the atomistic modeling for Li stripping and plating, and predicts optimal solid interfaces and new strategies for the future research and development of solid-state Li-metal batteries.

摘要

基于锂金属负极的全固态电池是一种很有前景的下一代储能系统,但目前受到低电流密度和短循环寿命的限制。由于对锂-固体界面处的失效机制缺乏了解,尤其是对导致界面失效的基本原子过程缺乏了解,进一步改进锂金属负极的研究受到阻碍。在此,通过明确考虑关键的基本原子过程和界面原子结构,利用大规模分子动力学模拟对固体电解质上的锂剥离和沉积进行了首次原子尺度建模研究。在模拟中,界面失效始于纳米级孔隙的形成,并观察到界面结构、锂扩散、粘附能和外加压力如何在锂循环过程中影响界面失效。通过在模拟中系统地改变全固态锂电池的参数,绘制出抑制循环过程中界面失效的外加压力和界面粘附能的参数空间,以指导全固态电池的选择。本研究建立了锂剥离和沉积的原子尺度模型,并预测了固态锂金属电池未来研发的最佳固体界面和新策略。

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