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水系可充电电池中的快速离子存储:从基础到应用

Fast Ionic Storage in Aqueous Rechargeable Batteries: From Fundamentals to Applications.

作者信息

Huang Meng, Wang Xuanpeng, Liu Xiong, Mai Liqiang

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, 430070, P. R. China.

Department of Physical Science and Technology, School of Science, Wuhan University of Technology, Wuhan, 430070, P. R. China.

出版信息

Adv Mater. 2022 Mar;34(9):e2105611. doi: 10.1002/adma.202105611. Epub 2022 Jan 18.

Abstract

The highly dynamic nature of grid-scale energy systems necessitates fast kinetics in energy storage and conversion systems. Rechargeable aqueous batteries are a promising energy-storage solution for renewable-energy grids as the ionic diffusivity in aqueous electrolytes can be up to 1-2 orders of magnitude higher than in organic systems, in addition to being highly safe and low cost. Recent research in this regard has focussed on developing suitable electrode materials for fast ionic storage in aqueous electrolytes. In this review, breakthroughs in the field of fast ionic storage in aqueous battery materials, and 1D/2D/3D and over-3D-tunnel materials are summarized, and tunnels in over-3D materials are not oriented in any direction in particular. Various materials with different tunnel sizes are developed to be suitable for the different ionic radii of Li , Na , K , H , NH , and Zn , which show significant differences in the reaction kinetics of ionic storage. New topochemical paths for ion insertion/extraction, which provide superfast ionic storage, are also discussed.

摘要

电网规模能源系统的高度动态特性要求储能和转换系统具备快速动力学。可充电水系电池是可再生能源电网颇具前景的储能解决方案,因为除了具有高安全性和低成本外,水系电解质中的离子扩散率比有机体系中的离子扩散率高1 - 2个数量级。近期这方面的研究集中在开发适用于在水系电解质中快速离子存储的电极材料。在本综述中,总结了水系电池材料中快速离子存储领域以及一维/二维/三维和超三维隧道材料的突破,超三维材料中的隧道没有特定的取向。开发了具有不同隧道尺寸的各种材料,以适用于Li⁺、Na⁺、K⁺、H⁺、NH₄⁺和Zn²⁺的不同离子半径,这些离子在离子存储反应动力学上表现出显著差异。还讨论了提供超快离子存储的离子插入/提取新的拓扑化学路径。

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