Acta Metallurgica Sinica (English Letters) ›› 2023, Vol. 36 ›› Issue (1): 167-176.DOI: 10.1007/s40195-022-01481-9

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In Situ Embedment of ZnS Nanocrystals in High Porosity Carbon Fibers as an Advanced Anode Material for Efficient Lithium Storage

Wei Wang1,2,*(), Mingyu Guan1, Qinghua Wang1, Yangyang Chen3, Liang Chen1, Hong Yin1, Yucan Zhu1, Gangyong Li1, Zhaohui Hou1,*()   

  1. 1Key Laboratory of Hunan Province for Advanced Carbon-Based Functional Materials, School of Chemistry and Chemical Engineering, Hunan Institute of Science and Technology, Yueyang 414006, China
    2Guangxi Key Laboratory of Low Carbon Energy Material, Guangxi Normal University, Guilin 541004, China
    3College of Materials Science and Technology, Central South University of Forestry and Technology, Changsha 410004, China
  • Received:2022-05-15 Revised:2022-07-21 Accepted:2022-08-23 Online:2023-01-10 Published:2022-10-26
  • Contact: * Wei Wang,ww1454174@foxmail.com; Zhaohui Hou,zhaohuihou@126.com

Abstract:

ZnS is a promising material for lithium-ion battery anodes due to its abundant natural resources, simplicity of synthesis, and high theoretical lithium storage capacity. However, it needs to be optimized for its low conductivity and volume effect during the charge-discharge process. The traditional method of combining with carbonaceous materials is usually laborious, and the required sulfuration process may possibly result in the destruction of materials morphology. In this study, hybrid materials formed by the combination of ZnS nanocrystals and high porosity carbon fibers were synthesized by one-step electrospinning using zinc diethyldithiocarbamate and polyacrylonitrile as raw materials and poly (ethylene glycol)—block-poly (propylene glycol)—block-poly (ethylene glycol) as template. The method is simple and avoids the influence of sulfuration process on the morphology of materials. The composite presents a specific capacity of 592.2 mAh g−1 under a current density of 1 A g−1 after 1000 cycles. The porous structure significantly decreases the diffusion mean-free path of Li+ and inhibits the volume effect associated with the lithium storage process of ZnS. In addition, the 3D cross-linked carbon fibers improve the conductivity of materials. This study can serve as an inspiration for the development of other lithium storage composites.

Key words: Electrospinning, ZnS, Carbon fibers, Porous, Lithium storage