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近期提高 LiLaZrO 固体电解质中锂离子电导率的策略。

Recent Strategies for Lithium-Ion Conductivity Improvement in LiLaZrO Solid Electrolytes.

机构信息

Laboratory of Electrochemical Power Sources, Institute of High Temperature Electrochemistry, Ural Branch of the Russian Academy of Sciences, Yekaterinburg 620990, Russia.

出版信息

Int J Mol Sci. 2023 Aug 17;24(16):12905. doi: 10.3390/ijms241612905.

Abstract

The development of solid electrolytes with high conductivity is one of the key factors in the creation of new power-generation sources. Lithium-ion solid electrolytes based on LiLaZrO (LLZ) with a garnet structure are in great demand for all-solid-state battery production. LiLaZrO has two structural modifications: tetragonal () and cubic (). A doping strategy is proposed for the stabilization of highly conductive cubic LiLaZrO. The structure features, density, and microstructure of the ceramic membrane are caused by the doping strategy and synthesis method of the solid electrolyte. The influence of different dopants on the stabilization of the cubic phase and conductivity improvement of solid electrolytes based on LiLaZrO is discussed in the presented review. For mono-doping, the highest values of lithium-ion conductivity (~10 S/cm at room temperature) are achieved for solid electrolytes with the partial substitution of Li by Ga, and Zr by Te. Moreover, the positive effect of double elements doping on the Zr site in LiLaZrO is established. There is an increase in the popularity of dual- and multi-doping on several LiLaZrO sublattices. Such a strategy leads not only to lithium-ion conductivity improvement but also to the reduction of annealing temperature and the amount of some high-cost dopant. Al and Ga proved to be effective co-doping elements for the simultaneous substitution in Li/Zr and Li/La sublattices of LiLaZrO for improving the lithium-ion conductivity of solid electrolytes.

摘要

发展具有高电导率的固体电解质是创造新型发电源的关键因素之一。基于石榴石结构的 LiLaZrO (LLZ) 的锂离子固体电解质对于全固态电池的生产有很大的需求。LiLaZrO 有两种结构修饰:四方()和立方()。提出了一种掺杂策略来稳定高导电立方 LiLaZrO。陶瓷膜的结构特征、密度和微观结构是由固体电解质的掺杂策略和合成方法引起的。本综述讨论了不同掺杂剂对稳定立方相和提高基于 LiLaZrO 的固体电解质电导率的影响。对于单掺杂,通过 Ga 部分取代 Li 和 Te 部分取代 Zr,在室温下获得了具有最高锂离子电导率(~10 S/cm)的固体电解质。此外,还确定了在 LiLaZrO 中的 Zr 位进行双元素掺杂的积极影响。在 LiLaZrO 的几个亚晶格上,双掺杂和多掺杂的流行度有所增加。这种策略不仅提高了锂离子电导率,而且降低了退火温度和一些高成本掺杂剂的用量。Al 和 Ga 被证明是有效的共掺杂元素,可以同时取代 LiLaZrO 的 Li/Zr 和 Li/La 亚晶格,从而提高固体电解质的锂离子电导率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4d9/10454846/f78356b3e6b0/ijms-24-12905-g008.jpg

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