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通过旋涂高纯度LiPS人工固体电解质界面层提高锂负极的循环稳定性。

Improving Cycling Stability of the Lithium Anode by a Spin-Coated High-Purity LiPS Artificial SEI Layer.

作者信息

Wang Hongjiao, Wu Lilin, Xue Bai, Wang Fang, Luo Zhongkuan, Zhang Xianghua, Calvez Laurent, Fan Ping, Fan Bo

机构信息

Shenzhen Key Laboratory of Advanced Thin Films and Applications, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, Guangdong, China.

Laboratory of Glasses and Ceramics, Institute of Chemical Science, University of Rennes 1, Rennes 35042, France.

出版信息

ACS Appl Mater Interfaces. 2022 Apr 6;14(13):15214-15224. doi: 10.1021/acsami.1c25224. Epub 2022 Mar 22.

Abstract

Controlling the composition and microstructure of the solid electrolyte interphase (SEI) layer is critical to improving the cycling stability of the high-energy-density lithium-metal electrode. It is a quite tricky task to control the properties of the SEI layer which is conventionally formed by the chemical reactions between a Li metal and the additives. Herein, we develop a new route to synthesize a lithium-compatible sol of the sulfide electrolyte LiPS, so that a LiPS artificial SEI layer with a controllable nanoscale thickness and high phase purity can be prepared by spin-coating. The layer stabilizes the lithium/electrolyte interface by homogenizing the Li-ion flux, preventing the parasitic reactions, and alleviating concentration polarization. Consequently, a symmetrical cell with the LiPS-modified lithium electrodes can achieve stable lithium plating/stripping for 800 h at a current density of 1 mA cm. The Li-S batteries assembled with the LiPS-protected Li anodes show better capacity retention than their bare Li counterparts, whose average decay rate from the 240th cycle to the 800th cycle is only 0.004%/cycle. In addition, the LiPS layer improves the rate capacity of the batteries, significantly enhancing the capacity from 175 to 682 mA h g at a 2 C rate. The spin-coated LiPS artificial SEI layer provides a new strategy to develop high-performance Li metal batteries.

摘要

控制固体电解质界面(SEI)层的组成和微观结构对于提高高能量密度锂金属电极的循环稳定性至关重要。控制SEI层的性质是一项相当棘手的任务,传统上SEI层是通过锂金属与添加剂之间的化学反应形成的。在此,我们开发了一种新方法来合成硫化物电解质LiPS的锂兼容溶胶,从而可以通过旋涂制备具有可控纳米级厚度和高相纯度的LiPS人工SEI层。该层通过使锂离子通量均匀化、防止寄生反应和减轻浓差极化来稳定锂/电解质界面。因此,具有LiPS修饰锂电极的对称电池在1 mA cm的电流密度下可实现800 h的稳定锂沉积/剥离。用LiPS保护的锂阳极组装的锂硫电池比其裸锂对应物表现出更好的容量保持率,从第240次循环到第800次循环的平均衰减率仅为0.004%/循环。此外,LiPS层提高了电池的倍率性能,在2 C倍率下将容量从175 mA h g显著提高到682 mA h g。旋涂的LiPS人工SEI层为开发高性能锂金属电池提供了一种新策略。

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