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具有调制离子传输的超薄金属有机框架衍生固体聚合物电解质实现的高压宽温锂金属电池

High-Voltage and Wide-Temperature Lithium Metal Batteries Enabled by Ultrathin MOF-Derived Solid Polymer Electrolytes with Modulated Ion Transport.

作者信息

Yao Meng, Yu Tianhao, Ruan Qinqin, Chen Qingjun, Zhang Haitao, Zhang Suojiang

机构信息

Beijing Key Laboratory of Ionic Liquids Clean Process, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China.

School of Chemical Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

ACS Appl Mater Interfaces. 2021 Oct 6;13(39):47163-47173. doi: 10.1021/acsami.1c15038. Epub 2021 Sep 23.

Abstract

Solid polymer electrolytes (SPEs) of superior ionic conductivity, long-term cycling stability, and good interface compatibility are regarded as promising candidates to enable the practical applications of solid lithium metal batteries (SLMBs). Here, a mixed-matrix SPE (MMSE) with incorporated metal-organic frameworks (MOFs) and ionic liquid is prepared. The dissociation of Li salt in MMSE can be promoted effectively due to the introduction of MOF the Fourier-transform infrared spectroscopy (FT-IR) analysis, density functional theory calculation, and molecular dynamics simulation. The as-formed MMSE exhibits an ultralow thickness of 20 μm with a satisfactory ionic conductivity and lithium-ion transference number (1.1 mS cm at 30 °C, 0.72). The optimized SLMBs with high-voltage LiMnFePO (LMFP) exhibit an excellent cyclability at 4.2 V under room temperature. Moreover, Li/MMSE/LiFePO cells have desirable cycle performance from -20 to 100 °C, and their capacity remains 143.3 mA h g after being cycled 300 times at 10 C at 100 °C. The Li/LiFePO pouch cells also show excellent safety under extreme conditions. The Li symmetric cells can work steadily even at a supreme current density of 4 mA cm at 100 °C. From the above analysis, these MMSEs present new opportunities for the development of SLMBs with good electrochemical properties.

摘要

具有卓越离子传导率、长期循环稳定性和良好界面兼容性的固态聚合物电解质(SPEs)被视为实现固态锂金属电池(SLMBs)实际应用的有前景的候选材料。在此,制备了一种包含金属有机框架(MOFs)和离子液体的混合基质SPE(MMSE)。由于MOF的引入,通过傅里叶变换红外光谱(FT-IR)分析、密度泛函理论计算和分子动力学模拟可知,MMSE中锂盐的解离可得到有效促进。所制备的MMSE呈现出20μm的超低厚度,具有令人满意的离子传导率和锂离子迁移数(30°C时为1.1 mS cm,0.72)。采用高压LiMnFePO(LMFP)的优化固态锂金属电池在室温下4.2 V时表现出优异的循环性能。此外,Li/MMSE/LiFePO电池在-20至100°C范围内具有理想的循环性能,在100°C下以10 C倍率循环300次后,其容量仍保持在143.3 mA h g。Li/LiFePO软包电池在极端条件下也表现出优异的安全性。Li对称电池即使在100°C下最高电流密度为4 mA cm时也能稳定工作。从上述分析可知,这些MMSE为开发具有良好电化学性能的固态锂金属电池提供了新机遇。

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