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用于高压锂金属电池的掺杂LiLaZrTaO的交联复合固体聚合物电解质

Cross-Linked Composite Solid Polymer Electrolyte Doped with LiLaZrTaO for High Voltage Lithium Metal Batteries.

作者信息

Meda Lamartine, Masafwa Kutemwa, Crockem Ayssia N, Williams Jere A, Beamon Nila A, Adams Jada I, Tunis Jeremiah V, Yang Lingyu, Schaefer Jennifer L, Wu James J

机构信息

Department of Chemistry, Xavier University of Louisiana, 1 Drexel Drive, New Orleans, Louisiana 70125, United States.

Deptartment of Chemical & Biomolecular Engineering, University of Notre Dame, Notre Dame, Indiana 46556, United States.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 28;16(34):44791-44801. doi: 10.1021/acsami.4c08181. Epub 2024 Aug 19.

Abstract

Composite solid polymer electrolytes (CSPEs) are safer alternatives to liquid electrolytes and excellent candidates for high-voltage solid-state batteries. However, interfacial instabilities between the electrodes and CSPEs are one of the bottlenecks in pursuing these systems. In this study, a cross-linked CSPE was synthesized based on polypropylene carbonate, polyethylene glycol methyl ether acrylate, polyethylene glycol diacrylate with additives including lithium bis(trifluoromethane)sulfonimide salt, and tantalum-doped lithium lanthanum zirconium oxide (LLZTO). Mass fractions of 10, 20, and 40% LLZTO were added to the CSPE matrix. In a symmetric cell, lithium plating and stripping revealed that the interface between the lithium metal anode and CSPE with 10% of the LLZTO (CSPE-10LLZTO) shows the most stable interface. The CSPE-10LLZTO sample demonstrated high flexibility and showed no degradation over 800 h of cycling at varying current densities. The ionic conductivity for the CSPE-10LLZTO sample at 40 °C was 6.4 × 10 S/cm. An all-solid-state full cell was fabricated with LiNiMnCoO as the cathode, CSPE-10LLZTO as the electrolyte and separator, and Li metal as the anode, delivering approximately 140 mAh/g of capacity. Differential scanning calorimetry measurements on CSPE-LLZTO showed high miscibility and the elimination of crystallinity. Raman spectroscopy revealed uniformity in the structure. These findings demonstrate the capability of the CSPEs to develop high-voltage solid-state lithium metal batteries.

摘要

复合固体聚合物电解质(CSPEs)是液体电解质更安全的替代品,也是高压固态电池的理想候选材料。然而,电极与CSPEs之间的界面不稳定性是开发这些体系的瓶颈之一。在本研究中,基于聚碳酸丙烯酯、聚乙二醇甲基醚丙烯酸酯、聚乙二醇二丙烯酸酯,并添加双(三氟甲烷)磺酰亚胺锂盐和钽掺杂的锂镧锆氧化物(LLZTO)合成了一种交联CSPE。将质量分数为10%、20%和40%的LLZTO添加到CSPE基体中。在对称电池中,锂的沉积和剥离表明,锂金属阳极与含有10%LLZTO的CSPE(CSPE-10LLZTO)之间的界面显示出最稳定的界面。CSPE-10LLZTO样品表现出高柔韧性,在不同电流密度下循环800小时未出现降解。CSPE-10LLZTO样品在40℃时的离子电导率为6.4×10 S/cm。以LiNiMnCoO为正极、CSPE-10LLZTO为电解质和隔膜、锂金属为负极制备了全固态全电池,其容量约为140 mAh/g。对CSPE-LLZTO进行的差示扫描量热法测量显示出高混溶性且消除了结晶度。拉曼光谱表明结构均匀。这些发现证明了CSPEs用于开发高压固态锂金属电池的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26c6/11367574/df082869025f/am4c08181_0001.jpg

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