C60和ZIF-67协同改性明胶基锂电池纳米纤维分离器

Xin Liang, Dongqing Zhao, Lulu Wang, Qianqian Huang, Chonghai Deng, Lili Wang, Leilei Hu, Sheng Liang, Huaxia Deng, H. Xiang
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引用次数: 3

摘要

近年来,锂硫电池因其较高的理论容量和较低的成本而备受关注,但“穿梭效应”和活性物质利用率低等问题一直阻碍着锂硫电池的发展和应用。隔膜是锂- s电池的重要组成部分,对其进行改性是提高锂- s电池电化学性能的一种简单有效的策略。在这项工作中,我们探索了通过一步一步的静电纺丝方法生产的两侧具有不同功能的分离器。多功能分离器一侧为纯明胶,另一侧为沸石咪唑酸骨架-67 (ZIF-67)- c60 -明胶。阴极侧的zif -67- c60 -明胶层非常重要。其上的化学吸附位点由ZIF-67提供,多硫化锂的转化位点由C60提供。明胶作为一种优良的隔膜材料,在阳极侧,使锂通量均匀,从而防止锂枝晶的产生。这种基于双层明胶层的多功能纳米纤维分离器在多硫化物的吸附和转化中发挥了重要作用,提高了Li-S电池的整体性能。结果表明,用所制备的隔膜组装的Li-S电池在0.2℃下循环100次后仍能保持888 mAh g-1的容量,在2℃下循环400次后的容量保持率为72.9%。这种简单的制备方法和高性能的双层膜结构为商业化应用提供了新的途径。
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C60 and ZIF-67 synergistically modified gelatin-based nanofibrous separators for Li-S batteries
The lithium-sulfur (Li-S) battery has been attracting much more attention in recent years due to its high theoretical capacity and low cost, although various issues, such as the “shuttle effect” and the low use ratio of active materials, have been hindering the development and application of Li-S batteries. The separator is an important part of Li-S batteries, and its modification is a simple and effective strategy to improve the electrochemical performance of Li-S batteries. In this work, we explore separators with different functions on their two sides that have been produced by a step-by-step electrospinning method. The multifunctional separator on one side is pure gelatin, and the other side is zeolitic imidazolate framework-67 (ZIF-67)-C60-gelatin. The ZIF-67-C60-gelatin layer on the cathode side is of great importance. The chemisorption sites on it are provided by ZIF-67, and the transformation sites of lithium polysulfide are provided by C60. Gelatin, which is on the anode side, as an admirable separator material, makes the lithium flux uniform and thus prevents the generation of lithium dendrites. This type of multifunctional nanofiber separator based on double gelatin layers plays an important role in the adsorption and conversion of polysulfides, and it improves the overall performance of the Li-S battery. As a result, the Li-S batteries assembled with the prepared separator can still maintain the capacity of 888 mAh g-1 after 100 cycles at 0.2 C, and the capacity retention rate of the Li-S batteries is 72.9% after 400 cycles at 2 C. This simple preparation method and high-performance bilayer membrane structure provide a new route for commercial application.
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