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可充电金属硫电池:从关键材料到作用机制

Rechargeable Metal-Sulfur Batteries: Key Materials to Mechanisms.

作者信息

Yao Weiqi, Liao Kameron, Lai Tianxing, Sul Hyunki, Manthiram Arumugam

机构信息

Materials Science and Engineering Program & Texas Materials Institute, The University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

Chem Rev. 2024 Apr 24;124(8):4935-5118. doi: 10.1021/acs.chemrev.3c00919. Epub 2024 Apr 10.

Abstract

Rechargeable metal-sulfur batteries are considered promising candidates for energy storage due to their high energy density along with high natural abundance and low cost of raw materials. However, they could not yet be practically implemented due to several key challenges: (i) poor conductivity of sulfur and the discharge product metal sulfide, causing sluggish redox kinetics, (ii) polysulfide shuttling, and (iii) parasitic side reactions between the electrolyte and the metal anode. To overcome these obstacles, numerous strategies have been explored, including modifications to the cathode, anode, electrolyte, and binder. In this review, the fundamental principles and challenges of metal-sulfur batteries are first discussed. Second, the latest research on metal-sulfur batteries is presented and discussed, covering their material design, synthesis methods, and electrochemical performances. Third, emerging advanced characterization techniques that reveal the working mechanisms of metal-sulfur batteries are highlighted. Finally, the possible future research directions for the practical applications of metal-sulfur batteries are discussed. This comprehensive review aims to provide experimental strategies and theoretical guidance for designing and understanding the intricacies of metal-sulfur batteries; thus, it can illuminate promising pathways for progressing high-energy-density metal-sulfur battery systems.

摘要

可充电金属硫电池因其高能量密度以及原材料的高天然丰度和低成本,被认为是储能的有前景的候选者。然而,由于几个关键挑战,它们尚未得到实际应用:(i)硫和放电产物金属硫化物的导电性差,导致氧化还原动力学缓慢,(ii)多硫化物穿梭,以及(iii)电解质与金属阳极之间的寄生副反应。为了克服这些障碍,人们探索了许多策略,包括对阴极、阳极、电解质和粘结剂的改性。在这篇综述中,首先讨论了金属硫电池的基本原理和挑战。其次,介绍并讨论了金属硫电池的最新研究,涵盖其材料设计、合成方法和电化学性能。第三,强调了揭示金属硫电池工作机制的新兴先进表征技术。最后,讨论了金属硫电池实际应用可能的未来研究方向。这篇全面的综述旨在为设计和理解金属硫电池的复杂性提供实验策略和理论指导;因此,它可以为推进高能量密度金属硫电池系统照亮有前景的途径。

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