卤化物
材料科学
纳米技术
离子键合
快离子导体
固态
无定形固体
电解质
离子
电化学
理论(学习稳定性)
离子电导率
化学稳定性
Crystal(编程语言)
聚合物电解质
固体表面
工程物理
合理设计
计算机科学
基础(证据)
锂(药物)
作者
Chang Liu,Xingkun Liu,Chunwen Sun
标识
DOI:10.1021/acsenergylett.6c01447
摘要
Abstract Halide solid state electrolytes are applicable for all-solid-state batteries due to their favorable ionic conductivity, desirable mechanical deformability, and wide electrochemical stability window. Here we review recent advances in both lithium-based and sodium-based halide electrolytes. Beginning with materials classification and synthesis methods, this review delves into the effects of crystal framework architecture, coordination environment, and the synergistic regulation of occupancy and vacancies on ion conduction mechanisms, particularly emphasizing the advantages of amorphous halide solid state electrolytes. The underlying origins of air instability and electrolyte/interface failure in halide-based batteries are systematically summarized, followed by a discussion of stability enhancement strategies, including elemental doping, interfacial engineering, and structural optimization. Notably, this review introduces a machine learning perspective, exploring its applications in materials screening, elucidation of ion transport mechanisms, and prediction of interfacial reactions. This review provides a theoretical foundation and technical guidance for the rational design of all-solid-state batteries.
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