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用于稳定金属锂负极的晶面界面晶体学优化

Interface Crystallographic Optimization of Crystal Plane for Stable Metallic Lithium Anode.

作者信息

Bao Weizhai, Wang Ronghao, Sun Kaiwen, Qian Chengfei, Zhang Yuhao, Li Jingfa

机构信息

School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing 210044, China.

Australian Centre for Advanced Photovoltaics, School of Photovoltaic and Renewable Energy Engineering, University of New South Wales, Sydney 2052, Australia.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 31;14(34):38696-38705. doi: 10.1021/acsami.2c08278. Epub 2022 Aug 17.

Abstract

Li metal, the ideal anode material for rechargeable batteries, suffers from the inherent limitations of uneven interface kinetics and dendrite growth. Herein, we tackle this issue by applying an interface crystallographic optimization strategy. We demonstrate a promising metallic Li anode design by introducing a customized magnetron sputtering layer of preferred orientation copper coating on the surface of a current collector. The sputtered Cu layer employed is stable against the highly reactive robust Li metal to render the surface lithiophilic and achieve promoted interface kinetics due to the perfect interface-crystal plane matching between the sputtered copper layer and premier Li metal. The dendrite-free Li anode sustains stable interface kinetics and achieves a stable life span of 200 cycles during the plating and stripping process in commercial carbonate electrolytes. This design based on crystallographic optimization provides important insights into the design principles of the Li metal anode as well as other alkali metal anodes (Na, K, Zn, Mg, and Al).

摘要

锂金属作为可充电电池的理想负极材料,存在界面动力学不均匀和枝晶生长等固有局限性。在此,我们通过应用界面晶体学优化策略来解决这一问题。我们通过在集流体表面引入定制的具有择优取向铜涂层的磁控溅射层,展示了一种有前景的金属锂负极设计。所采用的溅射铜层对高活性的锂金属具有稳定性,使表面具有亲锂性,并由于溅射铜层与初生锂金属之间完美的界面 - 晶面匹配而实现了促进的界面动力学。无枝晶锂负极在商业碳酸盐电解质的电镀和剥离过程中维持稳定的界面动力学,并实现了200次循环的稳定寿命。这种基于晶体学优化的设计为锂金属负极以及其他碱金属负极(钠、钾、锌、镁和铝)的设计原则提供了重要见解。

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