Department of Materials Science , Fudan University , Shanghai 200433 , China.
ACS Appl Mater Interfaces. 2020 Jan 15;12(2):2354-2361. doi: 10.1021/acsami.9b17200. Epub 2019 Dec 31.
Lithium-sulfur (Li-S) batteries have been regarded as a promising candidate of secondary batteries to satisfy the enormous demand for electric vehicles and energy storage applications. However, Li-S batteries still suffer from severe capacity fading due to the shuttle effect of lithium polysulfides. Here, we develop a freestanding double-layer MoO/carbon nanotube@S (FMC@S) membrane by hydrothermal and suction filtration strategy, without polymer binder and current collector substrate. FMC@S contains a polysulfide blocking layer and an active material layer. Except for S content, the two layers have the same components and are integrated together, so there is no distinct interface between the two layers, which can facilitate ion and electron transport. As a result, the FMC@S cathode delivers promising capacity retention and rate capability. The hierarchical integrated design provides a new strategy to develop high-performance flexible cathodes for Li-S batteries.
锂硫(Li-S)电池被认为是二次电池的一种有前途的候选者,可以满足电动汽车和储能应用的巨大需求。然而,由于多硫化锂的穿梭效应,Li-S 电池仍然存在严重的容量衰减问题。在这里,我们通过水热和抽吸过滤策略开发了一种独立的双层 MoO/碳纳米管@S(FMC@S)膜,无需聚合物粘合剂和集流器基底。FMC@S 包含多硫化物阻挡层和活性材料层。除了 S 含量外,两层具有相同的成分并集成在一起,因此两层之间没有明显的界面,这有利于离子和电子传输。因此,FMC@S 正极具有出色的容量保持率和倍率性能。分层集成设计为开发高性能的 Li-S 电池柔性正极提供了一种新策略。