中教数据库 > Applied Mathematics and Mechanics(English Edition) > 文章详情

Atomic-scale simulations for lithium dendrite growth driven by strain gradient

更新时间:2023-05-28

【摘要】Dendrite formation is a major obstacle, e.g., capacity loss and short circuit,to the next-generation high-energy-density lithium(Li)-metal batteries. The development of successful Li dendrite mitigation strategies is impeded by an insu?cient understanding in Li dendrite growth mechanisms. The Li-plating-induced internal stress in Li-metal and its e?ects on dendrite growth have been widely studied, but the underlying microcosmic mechanism is elusive. In the present study, the role of the plating-induced stress in dendrite formation is analyzed through ?rst-principles calculations and ab initio molecular dynamic(AIMD) simulations. It is shown that the deposited Li forms a stable atomic nano?lm structure on the copper(Cu) substrate, and the adsorption energy of Li atoms increases from the Li-Cu interface to the deposited Li surface, leading to more aggregated Li atoms at the interface. Compared with the pristine Li-metal, the deposited Li in the early stage becomes compacted and su?ers the in-plane compressive stress. Interestingly,there is a giant strain gradient distribution from the Li-Cu interface to the deposited Li surface, making the deposited atoms adjacent to the Cu surface tend to press upwards with perturbation and causing the dendrite growth. This provides an insight into the atomicscale origin of Li dendrite growth, and may be useful for suppressing the Li dendrite in Li-metal-based rechargeable batteries.

【关键词】

258 2页 免费

发表评论

登录后发表评论 (已发布 0条)

点亮你的头像 秀出你的观点

0/500
以上留言仅代表用户个人观点,不代表中教立场
相关文献

推荐期刊

Copyright © 2013-2016 ZJHJ Corporation,All Rights Reserved

京ICP备2021021570号-13

京公网安备 11011102000866号