Key Laboratory of Flexible Electronics (KLOFE) & Institute of Advanced Materials (IAM), Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM), Nanjing Tech University (NanjingTech) , 30 South Puzhu Road, Nanjing 211816, China.
Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong , Wollongong, New South Wales 2522, Australia.
ACS Appl Mater Interfaces. 2017 Nov 22;9(46):40317-40323. doi: 10.1021/acsami.7b13763. Epub 2017 Nov 9.
A general synthetic approach has been demonstrated to fabricate three-dimensional (3D) structured metal sulfides@graphene, employing few-layered sulfide nanostructures with expanded interlayer spacing of the (002) plane (e.g., 0.98 nm for MoS nanoclusters and 0.65 nm for VS nanoribbons) and electrically conductive graphene as ideal building blocks. Here, small molecules (thioacetamide) acting as both the sulfur source and, more importantly, the structure-directing agent adjusting the interlayer spacing are wisely selected, further contributing to a sufficient space for ultrafast Li ion intercalation. The appealing features of a mechanically robust backbone, ultrathin thickness, abundant exposure of interlayer edges, and good electrical conductivity in such 3D architectures are favorable for providing easy access for the electrolyte to the structures and offering a shortened diffusion length of Li when utilized for energy storage. As a proof of concept, the electrochemical behavior of the resulting 3D structured metal sulfides@graphene as an anode material of lithium ion batteries (LIBs) is systematically investigated. As a consequence, high specific capacities, long lifespans, and superior rate capabilities have been realized in such well-designed architectures, e.g. maintaining a specific capacity as high as 965 mAh g for 120 cycles for VS@graphene and 1100 mAh g for 150 cycles for MoS@graphene.
已经证明了一种通用的合成方法来制造三维(3D)结构金属硫化物@石墨烯,使用具有扩大的(002)平面层间距的少层硫化物纳米结构(例如 MoS 纳米团簇的 0.98nm 和 VS 纳米带的 0.65nm)和导电石墨烯作为理想的构建块。在这里,明智地选择了小分子(硫代乙酰胺)作为硫源,更重要的是,作为结构导向剂来调节层间距,这进一步为超快锂离子插层提供了足够的空间。在这种 3D 结构中,机械强度高的骨架、超薄的厚度、丰富的层间边缘暴露和良好的导电性等吸引人的特点有利于电解质容易进入结构,并在用于储能时提供较短的锂离子扩散长度。作为概念验证,系统研究了所得 3D 结构金属硫化物@石墨烯作为锂离子电池(LIB)阳极材料的电化学行为。结果,在这种精心设计的结构中实现了高比容量、长循环寿命和优异的倍率性能,例如 VS@graphene 可保持高达 965mAh g 的比容量 120 个循环,MoS@graphene 可保持 1100mAh g 的比容量 150 个循环。