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用于锂离子电池和后锂离子电池的非晶态材料。

Amorphous Materials for Lithium-Ion and Post-Lithium-Ion Batteries.

作者信息

Ding Junwei, Ji Dongfang, Yue Yuanzheng, Smedskjaer Morten M

机构信息

Department of Chemistry and Bioscience, Aalborg University, Aalborg, 9220, Denmark.

College of Food and Bioengineering, Zhengzhou University of Light Industry, Zhengzhou, 450002, China.

出版信息

Small. 2024 Feb;20(5):e2304270. doi: 10.1002/smll.202304270. Epub 2023 Oct 5.

Abstract

Lithium-ion and post-lithium-ion batteries are important components for building sustainable energy systems. They usually consist of a cathode, an anode, an electrolyte, and a separator. Recently, the use of solid-state materials as electrolytes has received extensive attention. The solid-state electrolyte materials (as well as the electrode materials) have traditionally been overwhelmingly crystalline materials, but amorphous (disordered) materials are gradually emerging as important alternatives because they can increase the number of ion storage sites and diffusion channels, enhance solid-state ion diffusion, tolerate more severe volume changes, and improve reaction activity. To develop superior amorphous battery materials, researchers have conducted a variety of experiments and theoretical simulations. This review highlights the recent advances in using amorphous materials (AMs) for fabricating lithium-ion and post-lithium-ion batteries, focusing on the correlation between material structure and properties (e.g., electrochemical, mechanical, chemical, and thermal ones).  We  review both the conventional and the emerging characterization methods for analyzing AMs and present the roles of disorder in influencing the performances of various batteries such as those based on lithium, sodium, potassium, and zinc. Finally,  we  describe the challenges and perspectives for commercializing rechargeable AMs-based batteries.

摘要

锂离子电池和后锂离子电池是构建可持续能源系统的重要组成部分。它们通常由阴极、阳极、电解质和隔膜组成。最近,使用固态材料作为电解质受到了广泛关注。传统上,固态电解质材料(以及电极材料)绝大多数是晶体材料,但非晶(无序)材料正逐渐成为重要的替代材料,因为它们可以增加离子存储位点和扩散通道的数量,增强固态离子扩散,耐受更剧烈的体积变化,并提高反应活性。为了开发出优异的非晶电池材料,研究人员进行了各种实验和理论模拟。本综述重点介绍了使用非晶材料(AMs)制造锂离子电池和后锂离子电池的最新进展,着重探讨材料结构与性能(如电化学、机械、化学和热性能)之间的相关性。我们回顾了用于分析非晶材料的传统和新兴表征方法,并阐述了无序在影响各种电池(如基于锂、钠、钾和锌的电池)性能方面的作用。最后,我们描述了基于非晶材料的可充电电池商业化面临的挑战和前景。

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