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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Flexible cathodes and multifunctional interlayers based on carbonized bacterial cellulose for high-performance lithium-sulfur batteries
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Flexible cathodes and multifunctional interlayers based on carbonized bacterial cellulose for high-performance lithium-sulfur batteries

机译:基于碳化细菌纤维素的柔性阴极和多功能中间层,用于高性能锂硫电池

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摘要

A three-dimensional (3D) carbonaceous aerogel derived from sustainable bacterial cellulose (BC) is introduced as a flexible framework for sulfur in lithium-sulfur batteries. The 3D carbonized BC (CBC) with highly interconnected nanofibrous structure exhibits good electrical conductivity and mechanical stability. The intrinsic macroporous structure of CBC contributes to a high sulfur loading of 81 wt%. Microstructure and morphology characterization results demonstrate that the sulfur species wrapped around CBC nanofibers are well dispersed. Even at such a high loading, the S/CBC composite still contains sufficient free space to accommodate the volume expansion of sulfur during lithiation. Furthermore, with an ultralight CBC interlayer inserted between the sulfur cathode and separator, significant improvement is achieved in active material utilization, cycling stability, and coulombic efficiency. The CBC interlayer can provide an extra conductive framework and adsorb migrating polysulfides to a certain degree. The CBC interlayer can also act as an additional collector for sulfur and thus could prevent the over-aggregation of insulated sulfur on the cathode surface. The good electrochemical performance reported in this work can be ascribed to the flexible 3D-interconnected nanostructure of the carbon framework and the rational design of battery configuration.
机译:引入了源自可持续细菌纤维素(BC)的三维(3D)碳质气凝胶,作为锂硫电池中硫的柔性框架。具有高度互连的纳米纤维结构的3D碳化BC(CBC)具有良好的导电性和机械稳定性。 CBC的固有大孔结构有助于达到81 wt%的高硫负荷。微观结构和形态表征结果表明,包裹在CBC纳米纤维周围的硫物种分布良好。即使在如此高的负载下,S / CBC复合材料仍然包含足够的自由空间,以适应锂化过程中硫的体积膨胀。此外,通过在硫阴极和隔板之间插入超轻的CBC中间层,活性材料利用率,循环稳定性和库仑效率得到了显着改善。 CBC中间层可以提供额外的导电框架,并在一定程度上吸附迁移的多硫化物。 CBC中间层还可以充当硫的附加捕收剂,因此可以防止绝缘硫在阴极表面过度聚集。在这项工作中报告的良好的电化学性能可以归因于碳骨架的柔性3D互连纳米结构和合理的电池配置设计。

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