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Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
Self-Sacrificing Interface Engineering for Enhanced Compatibility and Ionic Conduction in LLZTO/Polymer-Based
Linnan Bi1,2, Tianrui Sun1,2, Jiajun Li1,2
1Yangtze Delta Region Institute (QuZhou), University of Electronic Science and Technology of China, Chengdu 324000, China.
Abstract:
Interfacial instability and low ionic conductivity impede the utilization of PVDF-based electrolytes in solid-state lithium batteries. Herein, a molecular self-sacrificing strategy using bis(catecholato)diboron (B2cat2) to stabilize the LLZTO/P(VDF-CTFE) interface was proposed. B2cat2 effectively suppresses dehydrofluorination and regulates residual DMF at the molecular level, improving both the bulk phase and interfacial stability. Spectroscopic analyses (UV-vis, XPS, and NMR) confirm strong interactions between B2cat2 and LLZTO, leading to enhanced ion transport and lithium interfacial compatibility. The optimized eutectogel hybrid electrolytes (EHEs) achieve high lithium conductivity (0.59 mS cm-1) and lithium-ion transference number (0.66), long-term cycling (1000 h at 0.3 mA cm-2), and excellent full-cell performance with LiFePO4 and NCM811 cathodes. The pouch cell demonstrated remarkable stability across a wide temperature range, retaining a capacity of 79.2% after 150 cycles of charge and discharge at 0.5 C). This work presents an approach for constructing stable interfaces in solid-state batteries.
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