构建无机氧化物固态锂电池低电阻高稳定界面的策略

IF 42.9 Q1 ELECTROCHEMISTRY
Likun Chen , Peiran Shi , Tian Gu , Jinshuo Mi , Ke Yang , Liang Zhao , Jianshuai Lv , Ming Liu , Yan-Bing He , Feiyu Kang
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引用次数: 0

摘要

氧化物固态电解质具有高离子电导率、宽电化学窗口和固有安全性,是实现固态电池高能量密度和安全性能的关键。然而,由于氧化物和电极材料之间的物理接触和化学相容性差,氧化物和电极之间的大界面阻抗和严重的副反应仍然是离子在固态固体材料中传输的挑战。本文对近年来固体固体材料中固态界面的研究进行了综述和讨论。这些策略可分为界面结构设计和界面修改。结构设计,包括构建结构锂阳极、三维结构ose和集成阴极,可以显著增加电极与ose之间的有效接触面积,促进界面离子传输。通过界面修饰提高了锂金属阳极的润湿性,增强了界面离子传输,稳定了氧化物/电极界面。界面结构是提高结构稳定性和降低界面阻抗的关键。最后对SSBs界面改性的未来研究方向进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Strategies of constructing highly stable interfaces with low resistance in inorganic oxide-based solid-state lithium batteries

Strategies of constructing highly stable interfaces with low resistance in inorganic oxide-based solid-state lithium batteries
Oxide solid-state electrolytes (OSEs) with high ionic conductivity, wide electrochemical window and inherent safety are critical to achieve high-energy-density and safe performance of solid-state batteries (SSBs). However, the large interfacial impedance and severe side reactions between OSEs and electrodes remain challenging for ion transport in SSBs, which is attributed to the poor physical contact and chemical compatibility between OSEs and electrode materials. In this review, the recent research on solid-state interfaces in SSBs is summarized and discussed. These strategies can be categorized into interfacial structure design and interfacial modifications. Structure designs, including constructing architectural Li anode, three-dimension (3D) structure OSEs and integrated cathode can significantly increase the effective contact area between electrodes and OSEs to facilitate the interfacial ion transport. The interfacial modifications are utilized to improve the wettability of OSEs for lithium metal anode, enhance the interfacial ion transport, and stabilize the OSEs/electrodes interface. Interface architecture is crucial to enhance structural stability and reduce interface impedance for advanced oxide-based SSBs. At last, the future research direction of interfacial modification in SSBs is prospected.
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