Lithium-Ion Conduction Pathways in LLZO-PEO Composite Solid Electrolytes

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2025-01-22 DOI:10.1021/acsaem.4c02489
Jun Seo, Mohammad Nasir and Hee Jung Park*, 
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Abstract

Solid-state lithium–metal batteries utilizing composite solid electrolytes show great potential for overcoming the safety and energy density issues associated with conventional Li-ion batteries. Nevertheless, the fundamental mechanism of Li-ion conduction in composite electrolytes is still unclear. In this study, Li6.25Ga0.25La3Zr2O12-poly(ethylene oxide) (LLZO-PEO) composite electrolytes were fabricated by dispersing LLZO into a PEO matrix in different weight ratios to uncover the Li-ion conduction in both polymer- and ceramic-rich systems. The Li-ion transport in the LLZO-PEO composite was investigated by 2-probe AC impedance measurements at different temperatures. The in-depth impedance analysis based on conduction models confirms that Li-ions take different routes in composites depending on the LLZO ceramic content. For polymer-rich composites (up to ∼85 wt % LLZO), Li-ion conduction primarily occurred at the interfaces between PEO and LLZO, whereas above this threshold, conduction predominantly occurred through LLZO. The mechanistic insights into conduction behavior could be determinant in further optimizing the composite electrolytes for good cycling performance of solid-state lithium batteries.

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锂离子在LLZO-PEO复合固体电解质中的传导途径
利用复合固体电解质的固态锂金属电池在克服与传统锂离子电池相关的安全性和能量密度问题方面显示出巨大的潜力。然而,复合电解质中锂离子传导的基本机制尚不清楚。在本研究中,通过将LLZO以不同的重量比分散到PEO基质中,制备了li6.25 ga0.25 la3zr2o12 -聚(环氧乙烷)(LLZO-PEO)复合电解质,以揭示聚合物和富陶瓷体系中锂离子的传导。采用双探针交流阻抗测量方法研究了锂离子在LLZO-PEO复合材料中在不同温度下的输运。基于传导模型的深入阻抗分析证实,锂离子在复合材料中的路径随LLZO陶瓷含量的不同而不同。对于富含聚合物的复合材料(高达~ 85 wt % LLZO),锂离子传导主要发生在PEO和LLZO之间的界面上,而超过这个阈值,传导主要通过LLZO发生。对导电行为机理的深入研究将有助于进一步优化复合电解质,使固态锂电池具有良好的循环性能。
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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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