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镓掺杂石榴石电解质对锂金属负极具有优异的稳定性,可消除用于先进全固态电池的LiGaO沉淀。

Excellent Stability of Ga-Doped Garnet Electrolyte against Li Metal Anode Eliminating LiGaO Precipitates for Advanced All-Solid-State Batteries.

作者信息

Li Jun, Luo Hao, Liu Keke, Zhang Jiaxu, Zhai Huiyu, Su Xianli, Wu Jinsong, Tang Xinfeng, Tan Gangjian

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan430070, China.

Nanostructure Research Center, Wuhan University of Technology, Wuhan430070, China.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 8;15(5):7165-7174. doi: 10.1021/acsami.2c21603. Epub 2023 Jan 26.

Abstract

Ga-doped garnet-type LiLaZrO (Ga-LLZO) ceramics have long been recognized as ideal electrolyte candidates for all-solid-state lithium batteries (ASSLBs). However, in this study, it is shown that Ga-LLZO easily and promptly cracks in contact with molten lithium during the ASSLB assembly. This can be mainly ascribed to two aspects: (i) lithium captures O atoms and reduces Ga ions of the Ga-LLZO matrix, leading to a band-gap closure from >5 to <2 eV and a structural collapse from cubic to tetrahedral; and (ii) the -formed LiGaO impurity phase has severe side reactions with lithium, resulting in huge stress release along the grain boundaries. It is also revealed that, while the former process consumes hours to take effect, the latter one is immediate and accounts for the crack propagation of Ga-LLZO electrolytes. A minute SiO is preadded during the synthesis of Ga-LLZO and found effective in eliminating the LiGaO impurity phase. The SiO-modified Ga-LLZO solid electrolytes display excellent thermomechanical and electrochemical stabilities against lithium metals and well-reserved ionic conductivities, which was further confirmed by half-cells and full batteries. This study contributes to the understanding of the stability of garnet electrolytes and promotes their potential commercial applications in ASSLBs.

摘要

镓掺杂石榴石型LiLaZrO(Ga-LLZO)陶瓷长期以来一直被认为是全固态锂电池(ASSLB)的理想电解质候选材料。然而,在本研究中发现,在ASSLB组装过程中,Ga-LLZO与熔融锂接触时容易迅速开裂。这主要可归因于两个方面:(i)锂捕获O原子并还原Ga-LLZO基体中的Ga离子,导致带隙从>5 eV缩小到<2 eV,结构从立方相坍塌为四面体相;(ii)形成的LiGaO杂质相与锂发生严重的副反应,导致沿晶界释放巨大应力。研究还表明,虽然前一个过程需要数小时才能生效,但后一个过程是即时的,是Ga-LLZO电解质裂纹扩展的原因。在Ga-LLZO合成过程中预先添加微量的SiO,发现其对消除LiGaO杂质相有效。SiO改性的Ga-LLZO固体电解质对锂金属表现出优异的热机械和电化学稳定性,并保留了良好的离子电导率,半电池和全电池进一步证实了这一点。本研究有助于理解石榴石电解质的稳定性,并促进其在ASSLB中的潜在商业应用。

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