Electrocatalysis of polysulfide conversion via sulfur–cobalt CoS2 on a carbon nanotube surface as a cathode for high-performance lithium–sulfur batteries

被引:0
作者
Wenxiao Su
Wangjun Feng
Shejun Wang
Linjing Chen
Miaomiao Li
Changkun Song
机构
[1] Lanzhou University of Technology,School of Science
[2] Lanzhou University of Technology,State Key Laboratory of Advanced Processing and Recycling Nonferrous Metals
[3] Lanzhou Institute of Technology,Department of Basic Course
来源
Journal of Solid State Electrochemistry | 2019年 / 23卷
关键词
Lithium–sulfur batteries; Cathode; Cobalt disulphide; Electrocatalyst; Reaction kinetics;
D O I
暂无
中图分类号
学科分类号
摘要
Lithium–sulfur batteries received intense attention because of their high-energy density and inexpensive active material. However, the poor electrical conductivity of sulfur, shuttle effect, and slow electrochemical kinetics hinder their application. Herein, cobalt disulfides uniformly in situ grow on the surface of carbon nanotubes to prepare a three-dimensional carbon nanotubes-cobalt disulfide composite material as the sulfur host. The in situ growth cobalt disulfides on the carbon nanotube is confirmed to play the role of electrocatalyst, triggering the oxidation reaction of Li2S6 and Li2S4 at a higher potential, which promotes the conversion of Li2S6 to Li2S4 and Li2S4 to Li2S2, respectively, and significantly enhances the electrochemical reaction kinetics during the charge and discharge process. Particularly, the carbon nanotubes-cobalt disulfide-20 composite provides a suitable number of active sites for Li2S6 and Li2S4 and exerts an initial discharge capacity of 1253 mA h g−1 at 0.1 C and a retentive capacity of 84% after 200 cycles at 0.2 C.
引用
收藏
页码:2097 / 2105
页数:8
相关论文
共 339 条
  • [1] Nitta N(2015)undefined Mater Today 18 252-264
  • [2] Wu F(2012)undefined Nat Mater 11 19-29
  • [3] Lee JT(2016)undefined Nat Energy 1 16132-162
  • [4] Yushin G(2017)undefined Small Methods 1 1700134-550
  • [5] Bruce PG(2013)undefined J Power Sources 231 153-2568
  • [6] Freunberger SA(2016)undefined Electrochim Acta 192 529-118
  • [7] Hardwick LJ(2018)undefined Energy Environ Sci 11 2560-248
  • [8] Tarascon JM(2017)undefined Energy Storage Mater 6 112-330
  • [9] Pang Q(2017)undefined Nano Energy 38 239-92
  • [10] Liang X(2012)undefined J Power Sources 199 322-137