首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Stable cycling of Li-S batteries by simultaneously suppressing Li-dendrite growth and polysulfide shuttling enabled by a bioinspired separator
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Stable cycling of Li-S batteries by simultaneously suppressing Li-dendrite growth and polysulfide shuttling enabled by a bioinspired separator

机译:通过同时抑制BioInspired分离器使能Li-Dendrite生长和多硫化物梭式的Li-S电池稳定的循环

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摘要

Lithium-sulfur (Li-S) batteries are very promising candidates for next-generation high-energy-storage devices. However, the uncontrollable Li dendrite growth and notorious polysulfide shuttling severely hinder their real-world applications. Herein, we report a bioinspired separator to simultaneously address these issues. The separator was prepared by the successive deposition of silicone nanofilaments and polydopamine on the Celgard (R) 2400 separator. The separator has a 3D cross-linked network with abundant O, N-containing groups and Si-O groups, which can redistribute the Li+ in the electrolyte at the molecular level to realize fast Li+ diffusion and uniform Li+ flux. Thus, long-term stable Li stripping/plating is achieved even at a high current density of 10 mA cm(-2). Meanwhile, these polar groups can act as lithiophilic sites to effectively suppress polysulfide shuttling by forming Li-O and Li-N bonds with polysulfides. Consequently, the separator enables the stable cycling of the Li-S battery with high S loading CNTs/S cathode (4.3 mg cm(-2)). The battery features slow capacity decay (0.018% per cycle over 1000 cycles at 1.0C), high specific energy density (569.2 W h kg(-1)) and high average coulombic efficiency (98.71%). This study demonstrates the potential of advanced separators for high-performance Li-S batteries by realizing stable electrochemical interfaces at the anode and cathode.
机译:锂 - 硫(LI-S)电池是下一代高储能设备的非常有希望的候选人。然而,无法控制的李枝晶生长和臭名昭着的多硫化物穿梭严重阻碍了其现实世界的应用。在此,我们报告生物悬浮的分离器以同时解决这些问题。通过在Celgard2400分离器上的连续沉积硅氧烷纳米丝和聚二胺的连续沉积来制备隔膜。分离器具有3D交联网络,具有丰富的O,含N个组和Si-O基团,其可以在分子水平的电解质中重新分配Li +以实现快速Li +扩散和均匀的Li +通量。因此,即使在10 mA cm(-2)的高电流密度下也可以实现长期稳定的Li汽提/电镀。同时,这些极性基团可以充当锂硫醇位点,以通过形成与多硫化物的Li-O和Li-N键有效抑制多硫化物梭。因此,分离器能够具有高级加载CNT / s阴极(4.3mg cm(-2))的Li-S电池稳定循环。电池功能衰减速度慢(1.0℃以上超过1000周期0.018%),高特定能量密度(569.2 W H kg(-1))和高平均库仑效率(98.71%)。本研究通过在阳极和阴极处实现稳定的电化学界面来证明高性能LI-S电池的先进分离器的潜力。

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    Chinese Acad Sci Ctr Ecomat &

    Green Chem Lanzhou Inst Chem Phys Lanzhou 730000 Peoples R China;

    Chinese Acad Sci Ctr Ecomat &

    Green Chem Lanzhou Inst Chem Phys Lanzhou 730000 Peoples R China;

    Chinese Acad Sci Ctr Ecomat &

    Green Chem Lanzhou Inst Chem Phys Lanzhou 730000 Peoples R China;

    Chinese Acad Sci Ctr Ecomat &

    Green Chem Lanzhou Inst Chem Phys Lanzhou 730000 Peoples R China;

    Chinese Acad Sci Ctr Ecomat &

    Green Chem Lanzhou Inst Chem Phys Lanzhou 730000 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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  • 入库时间 2022-08-19 19:41:49

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