Effects of external stack and lateral pressures on Li dendrite growth by phase field modelling

IF 4.4 2区 工程技术 Q1 MECHANICS
Shuqun Zhu , Longfei Yang , Yuli Chen, Bin Ding
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引用次数: 0

Abstract

Solid-state lithium metal batteries have garnered considerable interest as next-generation energy storage devices owing to higher energy density and safety. However, uneven deposition at the Li anode/solid electrolyte (SE) interface during charging induces the growth of Li dendrites, posing significant safety risks due to potential short circuits. The interface evolution is intrinsically coupled with mechanical contact between the Li anode and SE, where external pressure plays a critical role. In this paper, we develop a mechano-electrochemical bi-coupled phase-field model to simulate Li dendrite growth under various loading conditions, thereby elucidating and quantifying the impact of external pressure - including both stack and lateral pressures on Li dendrite growth. Our key findings include: 1) The lateral widening and vertical penetration of Li dendrites can be inhibited under lateral pressure and stack pressure, respectively. Notably, the length and width of the Li dendrites are considerably reduced when stack and lateral pressures are simultaneously applied. The direction of inhibition is closely associated with the regions/branches which maintain higher stress and smooth surface. 2) Larger external pressure decreases the Li dendrite area and enhances space utilization, due to the reduced overall reaction rate at the Li dendrite/SE interface. 3) The uniformity of electrochemical reaction at Li dendrite/SE interface is improved under equal large stack and lateral pressures. These insights provide essential guidance for pressure management strategies in battery design.
固态锂金属电池作为下一代储能设备,因其更高的能量密度和安全性而备受关注。然而,在充电过程中,锂阳极/固体电解质(SE)界面的不均匀沉积会诱发锂枝晶的生长,从而因潜在的短路而带来巨大的安全风险。界面演变与锂阳极和固体电解质之间的机械接触有着内在联系,其中外部压力起着关键作用。在本文中,我们开发了一种机械-电化学双耦合相场模型,用于模拟各种加载条件下的锂枝晶生长,从而阐明并量化外部压力(包括叠加压力和横向压力)对锂枝晶生长的影响。我们的主要发现包括1) 在横向压力和叠加压力下,锂枝晶的横向扩展和垂直穿透分别受到抑制。值得注意的是,当同时施加堆叠压力和横向压力时,锂枝晶的长度和宽度都会大大减少。抑制方向与保持较高应力和光滑表面的区域/分支密切相关。2) 由于锂枝晶/SE 界面的整体反应速率降低,较大的外部压力会减小锂枝晶的面积并提高空间利用率。3) 在同等大的堆叠压力和横向压力下,锂枝晶/SE 界面的电化学反应均匀性得到改善。这些见解为电池设计中的压力管理策略提供了重要指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.00
自引率
7.30%
发文量
275
审稿时长
48 days
期刊介绍: The European Journal of Mechanics endash; A/Solids continues to publish articles in English in all areas of Solid Mechanics from the physical and mathematical basis to materials engineering, technological applications and methods of modern computational mechanics, both pure and applied research.
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