理想(伦理)
导电体
固态
离子
国家(计算机科学)
纳米技术
材料科学
工程物理
电气工程
计算机科学
物理
工程类
算法
量子力学
政治学
法学
作者
Kartik Sau,Shigeyuki Takagi,Tamio Ikeshoji,Kazuaki Kisu,Ryuhei Sato,Egon Campos dos Santos,Hao Li,Rana Mohtadi,Shin‐ichi Orimo
标识
DOI:10.1038/s43246-024-00550-z
摘要
Abstract All-solid-state batteries (ASSBs) are promising alternatives to conventional lithium-ion batteries. ASSBs consist of solid-fast-ion-conducting electrolytes and electrodes that offer improved energy density, battery safety, specific power, and fast-charging capability. Despite decades of intensive research, only a few have high ionic conductivity at ambient temperature. Developing fast ion-conducting materials requires both synthesis of high-conducting materials and a fundamental understanding of ion transport mechanisms. However, this is challenging due to wide variations of the ionic conductivity, even within the same class of materials, indicating the strong influence of structural modifications on ion transport. This Review discusses three selected material classes, namely layered oxides, polyhedral connections, and cluster anion types, as promising fast ion conductors. Emphasis is placed on the inherent challenges and the role of the framework structure on mobile ion conduction. We elucidate strategies to address these challenges by leveraging theoretical frameworks and insights from materials science.
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