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在隔膜上引入分层有序多孔结构作为高效的多硫化物捕获剂用于高载量锂硫电池。

Introduced Hierarchically Ordered Porous Architecture on a Separator as an Efficient Polysulfide Trap toward High-Mass-Loading Li-S Batteries.

作者信息

Zhang Yuning, Lin Shengxuan, Xiao Jiajia, Hu Xiaobin

机构信息

State Key of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

ACS Appl Mater Interfaces. 2024 Jan 24;16(3):3888-3900. doi: 10.1021/acsami.3c16184. Epub 2024 Jan 9.

DOI:10.1021/acsami.3c16184
PMID:38196337
Abstract

The severe shuttle effect and the depletion of active sulfur result in performance deterioration, presenting two formidable issues that must be overcome to achieve high-mass-loading lithium-sulfur batteries. Herein, we reported a composite separator by introducing carbon photonic crystals with a hierarchically ordered porous structure on a commercial separator. The ordered structure and interconnected hierarchical macro-meso-micropore network of the composite separator facilitate efficient trapping of polysulfides and rapid transport of lithium ions. The high ion diffusivity promotes the conversion of polysulfides enhancing sulfur utilization and mitigating the occurrence of "dead sulfur" on the surface of the separator. Impressively, under a high sulfur loading of 3 mg cm, the lithium-sulfur battery with the composite separator displayed a high reversible capacity of 1582 mA h g at 0.1 C and an excellent long-term cycling performance with a decay rate of as low as 0.033% per cycle over 1500 cycles at 1 C. Surprisingly, the battery represented a high reversible capacity of 935 mA h g at 0.2 C even at a sulfur loading of 6.71 mg cm. The design of the composite separator underscores the pivotal role of carbon architecture in improving battery performance and brings a bright prospect to enable the commercialization of high-mass-loading lithium-sulfur batteries.

摘要

严重的穿梭效应和活性硫的消耗导致性能下降,这是实现高载量锂硫电池必须克服的两个严峻问题。在此,我们报道了一种复合隔膜,通过在商用隔膜上引入具有分级有序多孔结构的碳光子晶体。复合隔膜的有序结构和相互连接的分级大-中-微孔网络有助于有效捕获多硫化物并快速传输锂离子。高离子扩散率促进多硫化物的转化,提高硫的利用率并减轻隔膜表面“死硫”的出现。令人印象深刻的是,在3 mg cm的高硫载量下,具有复合隔膜的锂硫电池在0.1 C时显示出1582 mA h g的高可逆容量,并且具有出色的长期循环性能,在1 C下1500次循环中的衰减率低至0.033%/循环。令人惊讶的是,即使在硫载量为6.71 mg cm时,该电池在0.2 C时仍具有935 mA h g的高可逆容量。复合隔膜的设计强调了碳结构在改善电池性能方面的关键作用,并为高载量锂硫电池的商业化带来了光明前景。

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