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用于固态锂电池高速稳定锂剥离与沉积的复合阳极中的离子导电相和电子导电相

Ionically and Electronically Conductive Phases in a Composite Anode for High-Rate and Stable Lithium Stripping and Plating for Solid-State Lithium Batteries.

作者信息

Zhong Yijun, Cao Chencheng, Tadé Moses Oludayo, Shao Zongping

机构信息

WA School of Mines: Minerals, Energy and Chemical Engineering (WASM-MECE), Curtin University, Perth, Western Australia 6102, Australia.

State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing 211816, China.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 31;14(34):38786-38794. doi: 10.1021/acsami.2c09801. Epub 2022 Aug 16.

Abstract

Intensive efforts have been taken to decrease the over-potentials of solid-state lithium batteries. Lowering the anode-electrolyte interface resistance is an effective method. Compared to simply improving the interface contact, constructing both ionically and electronically conductive phases within the anode demonstrates superior improvement in reducing the interface resistance and promoting electrochemical stability. However, complex preparation procedures are usually involved in the construction of the conductive phases and the loading of metallic lithium. Herein, a composite anode containing metallic lithium and well-dispersed ionically conductive LiN and electronically conductive components (Fe, FeC, and amorphous carbon) shows an effective decrease in lithium stripping/plating over-potentials at high current densities of up to 3 mA cm. The unique dual ionically and electronically conductive phases exhibit good cycling stability for 3000 h. A full battery with the composite anode and a LiFePO cathode also demonstrates decent performance. This work confirms the importance of constructing dual conductive phases that are electrochemically stable to Li and will not be consumed during the electrochemical reaction and provides a facile preparation method. The new knowledge discovered and the new methods developed in this work would inspire the future development of new Li-containing composite anodes.

摘要

人们已付出巨大努力来降低固态锂电池的过电位。降低阳极-电解质界面电阻是一种有效方法。与单纯改善界面接触相比,在阳极内构建离子和电子导电相在降低界面电阻和促进电化学稳定性方面表现出更优异的效果。然而,导电相的构建和金属锂的负载通常涉及复杂的制备过程。在此,一种包含金属锂以及分散良好的离子导电LiN和电子导电组分(Fe、FeC和无定形碳)的复合阳极在高达3 mA cm的高电流密度下,锂剥离/电镀过电位有效降低。独特的双离子和电子导电相在3000 h内表现出良好的循环稳定性。具有该复合阳极和LiFePO阴极的全电池也展现出良好性能。这项工作证实了构建对锂具有电化学稳定性且在电化学反应过程中不会被消耗的双导电相的重要性,并提供了一种简便的制备方法。这项工作中发现的新知识和开发的新方法将推动含锂新型复合阳极的未来发展。

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