Interface Issues and Challenges in All‐Solid‐State Batteries: Lithium, Sodium, and Beyond

Owing to the promise of high safety and energy density, all‐solid‐state batteries are attracting incremental interest as one of the most promising next‐generation energy storage systems. However, their widespread applications are inhibited by many technical challenges, including low‐conductivity ele...

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Veröffentlicht in:Advanced materials (Weinheim) 2021-02, Vol.33 (6), p.e2000721-n/a
Hauptverfasser: Lou, Shuaifeng, Zhang, Fang, Fu, Chuankai, Chen, Ming, Ma, Yulin, Yin, Geping, Wang, Jiajun
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container_issue 6
container_start_page e2000721
container_title Advanced materials (Weinheim)
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creator Lou, Shuaifeng
Zhang, Fang
Fu, Chuankai
Chen, Ming
Ma, Yulin
Yin, Geping
Wang, Jiajun
description Owing to the promise of high safety and energy density, all‐solid‐state batteries are attracting incremental interest as one of the most promising next‐generation energy storage systems. However, their widespread applications are inhibited by many technical challenges, including low‐conductivity electrolytes, dendrite growth, and poor cycle/rate properties. Particularly, the interfacial dynamics between the solid electrolyte and the electrode is considered as a crucial factor in determining solid‐state battery performance. In recent years, intensive research efforts have been devoted to understanding the interfacial behavior and strategies to overcome these challenges for all‐solid‐state batteries. Here, the interfacial principle and engineering in a variety of solid‐state batteries, including solid‐state lithium/sodium batteries and emerging batteries (lithium–sulfur, lithium–air, etc.), are discussed. Specific attention is paid to interface physics (contact and wettability) and interface chemistry (passivation layer, ionic transport, dendrite growth), as well as the strategies to address the above concerns. The purpose here is to outline the current interface issues and challenges, allowing for target‐oriented research for solid‐state electrochemical energy storage. Current trends and future perspectives in interfacial engineering are also presented. The interfacial dynamics between solid electrolytes and electrodes are considered as a crucial factor in determining all‐solid‐state battery performance. The interfacial principle and engineering in a variety of solid‐state batteries, including solid‐state lithium/sodium batteries and emerging batteries, are discussed. Specifc attention is paid to interface physics and interface chemistry, as well as the strategies to address the above concerns.
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However, their widespread applications are inhibited by many technical challenges, including low‐conductivity electrolytes, dendrite growth, and poor cycle/rate properties. Particularly, the interfacial dynamics between the solid electrolyte and the electrode is considered as a crucial factor in determining solid‐state battery performance. In recent years, intensive research efforts have been devoted to understanding the interfacial behavior and strategies to overcome these challenges for all‐solid‐state batteries. Here, the interfacial principle and engineering in a variety of solid‐state batteries, including solid‐state lithium/sodium batteries and emerging batteries (lithium–sulfur, lithium–air, etc.), are discussed. Specific attention is paid to interface physics (contact and wettability) and interface chemistry (passivation layer, ionic transport, dendrite growth), as well as the strategies to address the above concerns. The purpose here is to outline the current interface issues and challenges, allowing for target‐oriented research for solid‐state electrochemical energy storage. Current trends and future perspectives in interfacial engineering are also presented. The interfacial dynamics between solid electrolytes and electrodes are considered as a crucial factor in determining all‐solid‐state battery performance. The interfacial principle and engineering in a variety of solid‐state batteries, including solid‐state lithium/sodium batteries and emerging batteries, are discussed. 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subjects all‐solid‐state batteries
Dendritic structure
Energy storage
Flux density
interfaces
Lithium
lithium metal
Materials science
sodium metal
Solid electrolytes
solid‐state electrolytes
Storage systems
Wettability
title Interface Issues and Challenges in All‐Solid‐State Batteries: Lithium, Sodium, and Beyond
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