锂合金阳极与固态电解质的相容性评价

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Taniya Banerjee,  and , Rajen Kundu*, 
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引用次数: 0

摘要

在固态电池中实现高能量密度阳极材料的追求引发了对金属合金阳极的极大兴趣,因为它们具有优越的理论容量,更高的安全性和更高的电化学稳定性。锂合金材料,如硅、锡、银和铝,与液体电解质电池中使用的其他阳极材料或固态电池中的锂金属不同,其优势在于减少了短路和电池故障的风险,而短路和电池故障通常是由锂金属沉积导致的固-固界面波动引起的。然而,在合金/脱合金反应过程中,会发生较大的体积变化,导致固态系统中应力的积累,从而降低了结构的完整性。此外,在合金/脱合金的每个循环过程中,缓慢的锂离子动力学、扩散锂捕获和电化学疲劳机制是导致合金阳极严重容量衰退的主要原因。本文综述了金属合金阳极的最新进展,重点介绍了它们与固态电解质的相容性。我们还评估了阻碍合金阳极广泛采用和商业化的降解机制,同时提出了克服这些障碍以提高阳极性能的策略。随着下一代电池的革命性发展,固态系统中的金属合金阳极代表了一种实现更安全、更高效、更持久的能量存储解决方案的前沿方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Compatibility of Li Alloy Anodes with Solid-State Electrolytes: An Evaluation

Compatibility of Li Alloy Anodes with Solid-State Electrolytes: An Evaluation

The quest to achieve high energy density anode materials in solid-state batteries has sparked significant interest in metal alloy anodes due to their superior theoretical capacities, higher safety, and greater electrochemical stability. Lithium-alloying materials such as silicon, tin, silver, and aluminum offer advantages by reducing the risks of short circuits and battery failure, which are often caused by interfacial fluctuations at the solid–solid interface due to lithium metal deposition, unlike other anode materials used in liquid electrolyte batteries or lithium metal in solid-state batteries. However, during the alloying/dealloying reactions, large volume changes occur, causing the accumulation of stress in solid-state systems, thereby degrading the structural integrity. Additionally, the sluggish lithium-ion kinetics, diffusional lithium trapping, and electrochemical fatigue mechanism during each cycle of alloying/dealloying are identified as the main causes of severe capacity fading observed in alloy anodes. This review explores the recent developments in metal alloy anodes, highlighting their compatibility with solid-state electrolytes. We also assess the degradation mechanisms in alloy anodes that hinder their widespread adoption and commercialization while suggesting strategies to overcome these barriers for improved anode performance. With the promise of revolutionizing the next generation of batteries, metal alloy anodes in solid-state systems represent a cutting-edge approach to achieving safer, more efficient, and longer-lasting energy storage solutions.

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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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