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全固态锂电池用复合电解质:低温制备与电导率提升。

Composite Electrolyte for All-Solid-State Lithium Batteries: Low-Temperature Fabrication and Conductivity Enhancement.

机构信息

New and Renewable Energy Research Division, Korea Institute of Energy Research, 152 Gajeong-ro, Yuseong-gu, Daejeon, 34129, Republic of Korea.

Department of Fine Chemical Engineering and Applied Chemistry, Chungnam National University, 99 Daehak-ro, Yuseong-gu, Daejeon, 34134, Republic of Korea.

出版信息

ChemSusChem. 2017 May 22;10(10):2175-2181. doi: 10.1002/cssc.201700104. Epub 2017 Apr 5.

Abstract

All-solid-state lithium batteries offer notable advantages over conventional Li-ion batteries with liquid electrolytes in terms of energy density, stability, and safety. To realize this technology, it is critical to develop highly reliable solid-state inorganic electrolytes with high ionic conductivities and adequate processability. Li Al Ti (PO ) (LATP) with a NASICON (Na superionic conductor)-like structure is regarded as a potential solid electrolyte, owing to its high "bulk" conductivity (ca. 10  S cm ) and excellent stability against air and moisture. However, the solid LATP electrolyte still suffers from a low "total" conductivity, mainly owing to the blocking effect of grain boundaries to Li conduction. In this study, an LATP-Bi O composite solid electrolyte shows very high total conductivity (9.4×10  S cm ) at room temperature. Bi O acts as a microstructural modifier to effectively reduce the fabrication temperature of the electrolyte and to enhance its ionic conductivity. Bi O promotes the densification of the LATP electrolyte, thereby improving its structural integrity, and at the same time, it facilitates Li conduction, leading to reduced grain-boundary resistance. The feasibility of the LATP-Bi O composite electrolyte in all-solid-state Li batteries is also examined in this study.

摘要

全固态锂电池在能量密度、稳定性和安全性方面相对于传统的液态锂离子电池具有显著优势。为了实现这项技术,开发具有高离子电导率和适当加工性能的高可靠性固态无机电解质至关重要。具有 NASICON(钠离子导体)类似结构的 LiAlTi(PO )(LATP)因其高“体”电导率(约 10 S cm )和对空气及水分的优异稳定性而被视为一种潜在的固体电解质。然而,固态 LATP 电解质的“总”电导率仍然较低,主要是由于晶界对 Li 传导的阻碍效应。在这项研究中,LATP-BiO 复合固体电解质在室温下表现出非常高的总电导率(9.4×10 S cm )。BiO 作为微观结构改性剂,可有效降低电解质的制备温度并提高其离子电导率。BiO 促进了 LATP 电解质的致密化,从而提高了其结构完整性,同时也促进了 Li 的传导,降低了晶界电阻。本研究还考察了 LATP-BiO 复合电解质在全固态锂电池中的可行性。

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