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集成界面策略实现室温固态锂电池。

Integrated Interface Strategy toward Room Temperature Solid-State Lithium Batteries.

机构信息

Qingdao Industrial Energy Storage Research Institute, Qingdao Institute of Bioenergy and Bioprocess Technology , Chinese Academy of Sciences , Qingdao 266101 , People's Republic of China.

School of Future Technology , University of Chinese Academy of Sciences , Beijing 100049 , People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2018 Apr 25;10(16):13588-13597. doi: 10.1021/acsami.8b02240. Epub 2018 Apr 11.

DOI:10.1021/acsami.8b02240
PMID:29620848
Abstract

Solid-state lithium batteries have drawn wide attention to address the safety issues of power batteries. However, the development of solid-state lithium batteries is substantially limited by the poor electrochemical performances originating from the rigid interface between solid electrodes and solid-state electrolytes. In this work, a composite of poly(vinyl carbonate) and LiSnPS solid-state electrolyte is fabricated successfully via in situ polymerization to improve the rigid interface issues. The composite electrolyte presents a considerable room temperature conductivity of 0.2 mS cm, an electrochemical window exceeding 4.5 V, and a Li transport number of 0.6. It is demonstrated that solid-state lithium metal battery of LiFeMnPO (LFMP)/composite electrolyte/Li can deliver a high capacity of 130 mA h g with considerable capacity retention of 88% and Coulombic efficiency of exceeding 99% after 140 cycles at the rate of 0.5 C at room temperature. The superior electrochemical performance can be ascribed to the good compatibility of the composite electrolyte with Li metal and the integrated compatible interface between solid electrodes and the composite electrolyte engineered by in situ polymerization, which leads to a significant interfacial impedance decrease from 1292 to 213 Ω cm in solid-state Li-Li symmetrical cells. This work provides vital reference for improving the interface compatibility for room temperature solid-state lithium batteries.

摘要

固态锂电池因其解决动力电池安全性问题而受到广泛关注。然而,固态锂电池的发展受到严重限制,原因是固态电极与固态电解质之间的刚性界面导致电化学性能较差。在这项工作中,通过原位聚合成功制备了聚(碳酸乙烯酯)和 LiSnPS 固态电解质的复合材料,以改善刚性界面问题。该复合电解质在室温下具有相当高的电导率 0.2 mS cm,电化学窗口超过 4.5 V,Li 迁移数为 0.6。研究表明,LiFeMnPO(LFMP)/复合电解质/Li 的固态锂金属电池在室温下以 0.5 C 的倍率循环 140 次后,可提供 130 mA h g 的高容量,容量保持率为 88%,库仑效率超过 99%。优异的电化学性能可归因于复合电解质与 Li 金属的良好兼容性,以及原位聚合工程化的固态电极与复合电解质的集成兼容界面,这使得固态 Li-Li 对称电池的界面阻抗从 1292 降低到 213 Ω cm。这项工作为改善室温固态锂电池的界面兼容性提供了重要参考。

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