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Chemical vapor deposition growth of carbon nanotube confined nickel sulfides from porous electrospun carbon nanofibers and their superior lithium storage properties.

An WangSanmu XieRong ZhangYiyi SheChuan ChenMichael K H LeungChunming NiuHongkang Wang
Published in: Nanoscale advances (2018)
Multidimensional architecture design is a promising strategy to explore unique physicochemical characteristics by synergistically integrating different structural and compositional materials. Herein, we report the facile synthesis of a novel dendritic hybrid architecture, where carbon nanotubes (CNTs) with nickel sulfide nanoparticles encapsulated inside are epitaxially grown out of the porous electrospun N-doped carbon nanofibers (CNFs) (denoted as CNT@NS@CNFs) through a combined strategy of electrospinning and chemical vapor deposition (CVD). The adopted thiophene (C 4 H 4 S) not only serves as a carbon source for the growth of CNTs but also as a sulfur source for the sulfurization of Ni particles and S-doping into carbon matrices. When examined as an anode material for lithium-ion batteries (LIBs), the dendritic CNT@NS@CNFs display superior lithium storage properties including good cycle stability and high rate capability, delivering a high reversible capacity of 630 mA h g -1 at 100 mA g -1 after 200 cycles and 277 mA h g -1 at a high rate of 1000 mA g -1 . These outstanding electrochemical properties can be attributed to the novel hybrid architecture, in which the encapsulation of nickel sulfide nanoparticles within the CNT/CNFs not only efficiently buffers the volume changes upon lithiation/delithiation, but also facilitates charge transfer and electrolyte diffusion owing to the highly conductive networks with open frame structures.
Keyphrases
  • carbon nanotubes
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  • metal organic framework
  • reduced graphene oxide
  • ionic liquid
  • minimally invasive
  • highly efficient
  • quantum dots
  • high resolution
  • mass spectrometry
  • wound healing
  • transition metal