Zhang Linlin, Wan Fang, Cao Hongmei, Liu Lili, Wang Yijing, Niu Zhiqiang
Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Renewable Energy Conversion and Storage Center, College of Chemistry, Nankai University, Tianjin, 300071, P. R. China.
The Key Laboratory of Material Processing and Mold of Ministry of Education, Henan Key Laboratory of Advanced Nylon Materials and Application, School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450001, P. R. China.
Small. 2020 May;16(18):e1907153. doi: 10.1002/smll.201907153. Epub 2020 Apr 13.
Lithium-sulfur (Li-S) batteries as a promising energy storage candidate have attracted attention due to their high energy density (2600 Wh kg ). However, the serious shuttle effect caused by the dissolution of the lithium polysulfides (LiPS) in electrolyte significantly degrades their cycling life and rate performance. Herein, the "binary active sites" concept in a Li-S battery system via the design of a cobalt vanadium oxide (CVO) modified multifunctional separator is designed. In the case of CVO, active vanadium sites simultaneously anchor the LiPS through the chemical affinity and active cobalt sites can dominate a rapid kinetic conversion. Such a synergistic effect contributes to improving the utilization of sulfur in the electrochemical process for the enhanced electrochemical performance. As a result, the Li-S battery with the CVO modified separator possesses a high reversible capacity of 1585.5 mAh g at 0.1 C and superior cycling stability with 0.012% capacity decay cycle after 3000 cycles. More impressively, the assembled soft-packaged Li-S devices can exhibit the excellent stability under bending states. This binary active sites strategy provides a route to design the functional materials for modifying separators of Li-S batteries to improve the performance.
锂硫(Li-S)电池作为一种很有前景的储能候选者,因其高能量密度(2600 Wh kg)而备受关注。然而,多硫化锂(LiPS)在电解液中的溶解所导致的严重穿梭效应显著降低了其循环寿命和倍率性能。在此,通过设计一种钴钒氧化物(CVO)修饰的多功能隔膜,在锂硫电池体系中引入了“双活性位点”概念。对于CVO而言,活性钒位点通过化学亲和力同时锚定LiPS,而活性钴位点则可主导快速的动力学转化。这种协同效应有助于提高电化学过程中硫的利用率,从而提升电化学性能。结果,采用CVO修饰隔膜的锂硫电池在0.1 C下具有1585.5 mAh g的高可逆容量,并且在3000次循环后具有优异的循环稳定性,容量衰减率为0.012%/循环。更令人印象深刻的是,组装的软包锂硫器件在弯曲状态下能表现出优异的稳定性。这种双活性位点策略为设计用于修饰锂硫电池隔膜的功能材料以提升性能提供了一条途径。