Understanding multi-scale ion-transport in solid-state lithium batteries

IF 42.9 Q1 ELECTROCHEMISTRY
Wen Yu , Nanping Deng , Yang Feng , Xiaofan Feng , Hengying Xiang , Lu Gao , Bowen Cheng , Weimin Kang , Kai Zhang
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引用次数: 0

Abstract

Solid-state lithium battery (SSLB) is considered as one of the promising candidates for next-generation power batteries due to high safety, unprecedented energy density and favorable adaptability to high pression and temperature. However, the system of solid electrolyte (SE), as one of the most important components in SSLB, is usually plagued by clumsy ionic transport, leading to poor rate performance of the SSLBs. Herein, a unique perspective is proposed to re-examine the ion-transport behavior in lithium conductors by tracing Li+ at multi-scale, including microscopic, mesoscopic and macroscopic scales. The multi-scale ion-transport mechanisms and corresponding characterization techniques are analyzed in depth. Furthermore, some strategies of structure design to improve ion-transport kinetics at corresponding scales are elaborated systematically, involving the modulation of microscopic homogeneous structure, mesoscopic heterogeneous structure and macroscopic structures, etc. The proposed generalized rules for SEs are expected to construct a close link from mechanism−structure−characterization to high performances for SSLBs.

Abstract Image

了解固态锂电池中的多尺度离子传输
固态锂电池(SSLB)具有极高的安全性、前所未有的能量密度以及对高压和高温的良好适应性,被认为是下一代动力电池的理想选择之一。然而,作为SSLB中最重要的组成部分之一的固体电解质(SE)体系,由于其离子输运笨拙,导致SSLB的倍率性能较差。本文提出了一个独特的视角,通过在多尺度(包括微观、介观和宏观尺度)上追踪Li+来重新研究锂导体中的离子输运行为。深入分析了多尺度离子输运机制及其表征技术。此外,系统阐述了相应尺度下改善离子输运动力学的结构设计策略,包括微观均相结构、介观非均相结构和宏观结构的调节等。所提出的广义规则有望建立从机制-结构-表征到sslb高性能的密切联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
33.70
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