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硫银锗矿型固体电解质与锂金属负极之间界面的调控

Regulation of the Interfaces Between Argyrodite Solid Electrolytes and Lithium Metal Anode.

作者信息

Pang Bo, Gan Yongping, Xia Yang, Huang Hui, He Xinping, Zhang Wenkui

机构信息

College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou, China.

出版信息

Front Chem. 2022 Feb 1;10:837978. doi: 10.3389/fchem.2022.837978. eCollection 2022.

Abstract

Lithium-ion batteries (LIBs) are widely used in portable electronic devices, electric vehicles and large scale energy storage, due to their considerable energy density, low cost and long cycle life. However, traditional liquid batteries suffer from safety problems such as leakage, thermal runaway and even explosion. Part of the issues are caused by lithium dendrites puncturing the liquid electrolyte during cycling. In order to achieve the objective of higher safety and energy density, a rigid solid-state electrolyte (SSE) is proposed instead of liquid electrolyte (LE). Thereinto, sulfide SSEs have received of the most attention due to their high ionic conductivity. Among all the sulfide SSEs, argyrodite SSEs are considered to be one of the most promising solid-state electrolytes due to their high ionic conductivity, high thermal stability and good processablity. On the other hand, lithium metal is an ideal material for anode because of its high specific energy, low potential and large storage capacity. However, interfacial problems between argyrodite SSEs and the anode (interfacial reactions, lithium dendrites, etc.) are considered to be important factors affecting their availability. In this mini review, we summarize the behavior, properties and problems arising at the interface between argyrodite SSEs and anode. Strategies to solve interface problems and stabilize interfaces in recent years are also discussed. Finally, a brief outlook about argyrodite SSEs is presented.

摘要

锂离子电池(LIBs)因其可观的能量密度、低成本和长循环寿命,被广泛应用于便携式电子设备、电动汽车和大规模储能领域。然而,传统的液体电池存在诸如泄漏、热失控甚至爆炸等安全问题。部分问题是由锂枝晶在循环过程中刺穿液体电解质引起的。为了实现更高安全性和能量密度的目标,人们提出用刚性固态电解质(SSE)替代液体电解质(LE)。其中,硫化物固态电解质因其高离子电导率而备受关注。在所有硫化物固态电解质中,硫银锗矿型固态电解质因其高离子电导率、高热稳定性和良好的加工性能,被认为是最有前景的固态电解质之一。另一方面,锂金属因其高比能量、低电位和大存储容量,是阳极的理想材料。然而,硫银锗矿型固态电解质与阳极之间的界面问题(界面反应、锂枝晶等)被认为是影响其可用性的重要因素。在这篇小型综述中,我们总结了硫银锗矿型固态电解质与阳极界面处出现的行为、性质和问题。还讨论了近年来解决界面问题和稳定界面的策略。最后,对硫银锗矿型固态电解质进行了简要展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d65/8844468/102dc00a3986/fchem-10-837978-g001.jpg

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