Wei Chengbiao, Shao Xiaodong, Lin Feng, Liu Xiaoyan, Ding Wei, Wang Guoxu, Liu Hao, Gan Ruihui
College of Chemistry and Chemical Engineering, Heze University, Heze, 274015, China.
Department of Chemistry, Sungkyunkwan University, Suwon, 16419, Korea.
Chemistry. 2024 Sep 16;30(52):e202401442. doi: 10.1002/chem.202401442. Epub 2024 Sep 9.
Commercial lithium-ion batteries are gradually approaching their theoretical specific energy, which cannot meet the fast-growing energy storage demands. Lithium-sulfur (Li-S) batteries are anticipated to supersede lithium-ion batteries as the next-generation energy storage system owing to their high atheoretical specific capacity (1675 mAh g) and energy density (2600 Wh kg). Nonetheless, Li-S batteries encounter several challenges, including the inadequate conductivity of sulfur and lithium sulfide, sulfur's volume expansion, and the shuttle effect of lithium polysulfides, all of which significantly impact the practical utilization of Li-S batteries. Electrospun carbon-based nanofibers can simultaneously resolve these issues with their economical preparation, distinctive nanostructure, and exceptional flexibility. This review presents the most recent research findings on electrospun carbon-based nanofibers materials serving as sulfur hosts and interlayer components in Li-S batteries. We analyzed the impact of the material's structural design on the performance of Li-S batteries and the relative underlying mechanism. Finally, the current challenges and issues faced by carbon-based nanofibers composites in the application of Li-S batteries are summarized, and the future development trajectory are outlined.
商用锂离子电池正逐渐接近其理论比能量,已无法满足快速增长的储能需求。锂硫(Li-S)电池因其高理论比容量(1675 mAh g)和能量密度(2600 Wh kg),有望取代锂离子电池成为下一代储能系统。尽管如此,Li-S电池仍面临诸多挑战,包括硫和硫化锂的导电性不足、硫的体积膨胀以及多硫化锂的穿梭效应,所有这些都严重影响了Li-S电池的实际应用。电纺碳基纳米纤维凭借其经济的制备方法、独特的纳米结构和出色的柔韧性,能够同时解决这些问题。本文综述了电纺碳基纳米纤维材料作为Li-S电池中硫宿主和中间层组件的最新研究成果。我们分析了材料结构设计对Li-S电池性能的影响及其相关潜在机制。最后,总结了碳基纳米纤维复合材料在Li-S电池应用中面临的当前挑战和问题,并概述了未来的发展轨迹。