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The multi-scale dissipation mechanism of composite solid electrolyte based on nanofiber elastomer for all-solid-state lithium metal batteries.

作者信息

Yu Wen, Xiang Hengying, Yue Jianing, Feng Xiaofan, Duan Wenwen, Feng Yang, Cheng Bowen, Deng Nanping, Kang Weimin

机构信息

State Key Laboratory of Separation Membranes and Membrane Processes/National Center for International Joint Research on Separation Membranes, Tiangong University, Tianjin 300387, China; School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China.

School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China.

出版信息

J Colloid Interface Sci. 2025 Mar 15;682:1073-1084. doi: 10.1016/j.jcis.2024.12.042. Epub 2024 Dec 7.

DOI:10.1016/j.jcis.2024.12.042
PMID:39662233
Abstract

Developing next generation batteries necessitates a paradigm shift in the way to engineering solutions for materials challenges. In comparison to traditional organic liquid batteries, all-solid-state batteries exhibit some significant advantages such as high safety and energy density, yet solid electrolytes face challenges in responding dimensional changes of electrodes driven by mass transport. Herein, the critical mechanical parameters affecting battery cycling duration are evaluated based on Spearman rank correlation coefficient, decoupling them into strength, ductility, stiffness, toughness, elasticity, etc. Inspired by the statistical results to apply the materials with stress-relief mechanisms, we propose an elastic solid electrolyte based on the multi-scale mechanical dissipation mechanism. The LiLaZrTaO/thermoplastic polyurethanes curled fibrous framework is designed and prepared by side-by-side electrospinning technique, serving as elastic source and ion-transport pathways for the composite with poly(ethylene oxide) matrix. Dominated sequentially by electrolyte deformation, network orientation, extendable fibers and molecular chain unfolding, the prepared elastic electrolyte exhibits excellent resilience, compression and puncture resistance. Meanwhile, the curled fast ion conductor fibers can also provide the transport pathways along the component of transmembrane direction, endowing the composite electrolyte with an ionic conductivity of 1.46 × 10 S cm at 30 °C. A low capacity decay of 0.011 % per cycle at 2 C in assembled LiFePO/Li battery and an excellent lifespan of 1000 cycles at 50 °C in LiNiMnCoO/Li battery can be achieved. The elastic electrolyte system presents a promising strategy for enabling stable operation of high-energy all-solid-state lithium batteries.

摘要

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