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无负极锂金属电池中锂在铜基底上沉积的机理。

The Mechanism of Li Deposition on the Cu Substrates in the Anode-Free Li Metal Batteries.

机构信息

School of Advanced Materials, Peking University, Shenzhen Graduate School, Shenzhen, 518055, People's Republic of China.

Fujian Science & Technology Innovation Laboratory for Energy Devices of China (21C-LAB), Ningde, 352100, People's Republic of China.

出版信息

Small. 2023 Jan;19(3):e2205416. doi: 10.1002/smll.202205416. Epub 2022 Nov 7.

Abstract

Due to the rapid growth in the demand for high-energy-density Lithium (Li) batteries and insufficient global Li reserves, the anode-free Li metal batteries are receiving increasing attention. Various strategies, such as surface modification and structural design of copper (Cu) current collectors, have been proposed to stabilize the anode-free Li metal batteries. Unfortunately, the mechanism of Li deposition on the Cu surfaces with the different Miller indices is poorly understood, especially on the atomic scale. Here, the large-scale molecular dynamics simulations of Li deposition on the Cu substrates are performed in the anode-free Li metal batteries. The results show that the surface properties of the Li panel can be altered through the different Cu substrate surfaces. Through surface similarity analysis, potential energy distributions,and inhomogeneous deposition simulations, it is found that the Li atoms exhibit different potential energy variances and kinetic characteristics on the different Cu surfaces. Furthermore, a proposal to reduce the fraction of the (110) facet in commercial Cu foils is made to improve the reversibility and stability of Li plating/stripping in the anode-free Li metal batteries.

摘要

由于对高能量密度锂离子(Li)电池的需求迅速增长,而全球 Li 储量不足,无阳极 Li 金属电池受到越来越多的关注。已经提出了各种策略,例如对铜(Cu)集流器的表面改性和结构设计,以稳定无阳极 Li 金属电池。不幸的是,对于不同晶面指数的 Cu 表面上 Li 沉积的机理仍了解甚少,特别是在原子尺度上。在这里,在无阳极 Li 金属电池中对 Li 沉积在 Cu 基底上的大规模分子动力学模拟进行了研究。结果表明,可以通过不同的 Cu 基底表面来改变 Li 极板的表面性质。通过表面相似性分析、势能分布和不均匀沉积模拟,发现 Li 原子在不同的 Cu 表面上表现出不同的势能变化和动力学特性。此外,提出减少商用 Cu 箔中(110)晶面的比例,以提高无阳极 Li 金属电池中 Li 电镀/剥离的可逆性和稳定性。

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