Liu Tao, Sun Shimei, Hao Jialiang, Song Wei, Niu Quanhai, Sun Xiaolin, Wu Yue, Song Depeng, Wu Jianfei
Qingdao Institute of Bioenergy and Bioprocess Technology , Chinese Academy of Sciences , Qingdao 266101 , PR China.
Center of Materials Science and Optoelectronics Engineering , University of Chinese Academy of Sciences , Beijing 100049 , PR China.
ACS Appl Mater Interfaces. 2019 May 1;11(17):15607-15615. doi: 10.1021/acsami.9b02136. Epub 2019 Apr 22.
The future energy needs have triggered research interest in finding novel energy storage systems with high energy density. Lithium-sulfur batteries are regarded as one of the most promising options for the next-generation energy storage applications because of their high theoretical energy and low cost. However, the electrochemical performances of lithium-sulfur batteries are seriously compromised by the polysulfide (LiPS) shuttling and the insulating nature of sulfur. To overcome these issues, novel CoNiFeO (CNFO) nanoparticles uniformly covered on the carbon nanotubes are now reported as an efficient functional interlayer. Benefiting from the sufficient sulfiphilic sites of the CNFO for chemically bonding with LiPSs, as well as the conductive interconnected skeleton of carbon nanotubes, this composite material showed great enhancement on the rate capability and cycle stability of Li-S batteries. The Li-S battery using this interlayer exhibited a high initial capacity of 897 mA h g and a low capacity decay of 0.063% per cycle within 250 cycles at 2 C. Meanwhile, an reversible specific capacity of 869 mA h g (at 0.5 C) with high Coulombic efficiency could be obtained over 100 cycles at an elevated temperature (60 °C). We speculated that the chemical adsorption of CNFO for polysulfide-anchoring is extremely critical for the performances of Li-S batteries under high temperature.
未来的能源需求引发了人们对寻找具有高能量密度的新型储能系统的研究兴趣。锂硫电池因其高理论能量和低成本,被认为是下一代储能应用中最有前途的选择之一。然而,锂硫电池的电化学性能会因多硫化物(LiPS)穿梭效应和硫的绝缘性质而严重受损。为克服这些问题,现在报道了一种均匀覆盖在碳纳米管上的新型CoNiFeO(CNFO)纳米颗粒作为一种高效的功能中间层。受益于CNFO充足的亲硫位点与LiPSs化学键合,以及碳纳米管的导电互连骨架,这种复合材料在锂硫电池的倍率性能和循环稳定性方面有了很大提高。使用这种中间层的锂硫电池在2C下250次循环内表现出897 mA h g的高初始容量和每循环0.063%的低容量衰减。同时,在高温(60°C)下100次循环以上可获得869 mA h g(在0.5C下)的可逆比容量和高库仑效率。我们推测,CNFO对多硫化物的化学吸附对高温下锂硫电池的性能至关重要。