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纳米孔吸附效应对高有序多孔电解质添加剂改变锂扩散途径的影响用于高倍率全固态锂金属电池。

Nanoporous Adsorption Effect on Alteration of the Li Diffusion Pathway by a Highly Ordered Porous Electrolyte Additive for High-Rate All-Solid-State Lithium Metal Batteries.

机构信息

CAS Key Laboratory of Materials for Energy Conversion , Shanghai Institute of Ceramics, Chinese Academy of Science , Shanghai 200050 , P. R. China.

University of Chinese Academy of Science , Beijing 100049 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2018 Jul 18;10(28):23874-23882. doi: 10.1021/acsami.8b06574. Epub 2018 Jul 5.

Abstract

Solid polymer electrolytes (SPEs) have shown extraordinary promise for all-solid-state lithium metal batteries with high energy density and flexibility but are mainly limited by low ionic conductivity and their poor stability with lithium metal anodes. In this work, we propose a highly ordered porous electrolyte additive derived from SSZ-13 for high-rate all-solid-state lithium metal batteries. The nanoporous adsorption effect provided by the highly ordered porous nanoparticles in the poly(ethylene oxide) (PEO) electrolyte is found to significantly improve the Li conductivity (1.91 × 10 S cm at 60 °C, 4.43 × 10 S cm at 20 °C) and widen the electrochemical stability window to 4.7 V vs Li/Li. Meanwhile, the designed PEO-based electrolyte demonstrates enhanced stability with the lithium metal anode. Through systematically increasing Li diffusion, widening the electrochemical stability window, and enhancing the interfacial stability of the SSZ-composite electrolyte (CPE) electrolyte, the LiFePO/SSZ-CPE/Li cell is optimized to deliver high rate capability and stable cycling performance, which demonstrates great potential for all-solid-state energy storage application.

摘要

固体聚合物电解质(SPE)在具有高能量密度和灵活性的全固态锂金属电池方面显示出了非凡的前景,但主要受到低离子电导率和与锂金属阳极较差的稳定性的限制。在这项工作中,我们提出了一种源自 SSZ-13 的高度有序多孔电解质添加剂,用于高倍率全固态锂金属电池。在聚(氧化乙烯)(PEO)电解质中,高度有序的多孔纳米粒子提供的纳米孔吸附作用被发现可显著提高 Li 电导率(在 60°C 时为 1.91×10 S cm,在 20°C 时为 4.43×10 S cm)并拓宽电化学稳定窗口至 4.7 V vs Li/Li。同时,设计的基于 PEO 的电解质与锂金属阳极具有增强的稳定性。通过系统地增加 Li 扩散、拓宽电化学稳定窗口以及增强 SSZ 复合电解质(CPE)电解质的界面稳定性,优化 LiFePO/SSZ-CPE/Li 电池以实现高倍率能力和稳定的循环性能,这表明其在全固态储能应用方面具有巨大的潜力。

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