College of Materials Science and Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, PR China.
Chemistry. 2013 Jan 14;19(3):1013-9. doi: 10.1002/chem.201202127. Epub 2012 Nov 23.
A three-dimensional (3D) hierarchical carbon-sulfur nanocomposite that is useful as a high-performance cathode for rechargeable lithium-sulfur batteries is reported. The 3D hierarchically ordered porous carbon (HOPC) with mesoporous walls and interconnected macropores was prepared by in situ self-assembly of colloidal polymer and silica spheres with sucrose as the carbon source. The obtained porous carbon possesses a large specific surface area and pore volume with narrow mesopore size distribution, and acts as a host and conducting framework to contain highly dispersed elemental sulfur. Electrochemical tests reveal that the HOPC/S nanocomposite with well-defined nanostructure delivers a high initial specific capacity up to 1193 mAh g(-1) and a stable capacity of 884 mAh g(-1) after 50 cycles at 0.1 C. In addition, the HOPC/S nanocomposite exhibits high reversible capacity at high rates. The excellent electrochemical performance is attributed exclusively to the beneficial integration of the mesopores for the electrochemical reaction and macropores for ion transport. The mesoporous walls of the HOPC act as solvent-restricted reactors for the redox reaction of sulfur and aid in suppressing the diffusion of polysulfide species into the electrolyte. The "open" ordered interconnected macropores and windows facilitate transportation of electrolyte and solvated lithium ions during the charge/discharge process. These results show that nanostructured carbon with hierarchical pore distribution could be a promising scaffold for encapsulating sulfur to approach high specific capacity and energy density with long cycling performance.
本文报道了一种可作为高性能锂硫电池阴极的三维(3D)分层碳硫纳米复合材料。通过胶体聚合物和二氧化硅球的原位自组装,以蔗糖为碳源,制备了具有介孔壁和互连大孔的 3D 分级有序多孔碳(HOPC)。所得到的多孔碳具有大的比表面积和孔体积,以及狭窄的介孔尺寸分布,并作为容纳高度分散的元素硫的主体和导电骨架。电化学测试表明,具有明确纳米结构的 HOPC/S 纳米复合材料在 0.1 C 下经过 50 次循环后,具有高达 1193 mAh g(-1)的初始比容量和 884 mAh g(-1)的稳定容量。此外,HOPC/S 纳米复合材料在高倍率下表现出高可逆容量。优异的电化学性能完全归因于介孔有利于电化学反应和大孔有利于离子传输的有益结合。HOPC 的介孔壁作为硫的氧化还原反应的受限溶剂反应器,并有助于抑制多硫化物物种扩散到电解质中。“开放”的有序互连大孔和窗口有利于在充电/放电过程中传输电解质和溶剂化锂离子。这些结果表明,具有分级孔分布的纳米结构碳可以作为封装硫的有前途的支架,以实现高比容量和能量密度,以及长循环性能。