4.7 Article

A multidimensional rational design of nickel-iron sulfide and carbon nanotubes on diatomite via synergistic modulation strategy for supercapacitors

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 603, Issue -, Pages 799-809

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2021.06.131

Keywords

Nickel iron sulfide; Carbon nanotubes; Sulfurization process; Diatomite; Supercapacitor

Funding

  1. National Natural Science Foundation of China [51908092]
  2. graduate scientific research and innovation foundation of Chongqing, China [CYB20005, CYS20002]
  3. Funda-mental Research Funds for the Central Universities [2020CDJXZ001, 2020CDCGJ006, 2020CDCGCL004]
  4. National Natural Science Foundation of China-Guangdong [U1801254]
  5. Chongqing Special Postdoctoral Science Foundation [XmT2018043]
  6. Chongqing Research Program of Basic Research and Frontier Technology [cstc2017jcyjBX0080]
  7. Natural Science Foundation Project of Chongqing for Post-doctor [cstc2019jcyjbsh0079, cstc2019j-cyjbshX0085]
  8. Technological projects of Chongqing Municipal Edu-cation Commission [KJZDK201800801]
  9. Innovative Research Team of Chongqing [CXTDG201602014]
  10. Innovative tech-nology of New materials and metallurgy [2019CDXYCL0031]

Ask authors/readers for more resources

This research successfully synthesized NiFeSx@CNTs@MnS@Diatomite composite material, optimizing its electrochemical performance and enhancing specific capacitance, rate capability, and cycling stability, further expanding its potential applications in supercapacitors.
Based on their characteristics, transition metal layered double hydroxides have been of great scientific interest for their use in supercapacitors. Up until now, severe aggregation and low intrinsic conductivity have been the major hurdles for their application. In this work, nickel-iron sulfide nanosheets (NiFeSx) and carbon nanotubes (CNTs) were synthesized on diatomite using chemical vapor deposition and a two-step hydrothermal method to overcome these challenges. Synthesis of this composite successfully exploits the synergistic effect of multicomponent materials to improve the electrochemical performance. Diatomite is selected as a substrate to provide preferable surroundings for the uniform dispersion of nanomaterial on its surface, which enlarges the active sites that come in contact with the electrolytes, significantly improving the electrochemical properties. Combined with high conductivity and a synchronous sulfurization effect, the NiFeSx@CNTs@MnS@Diatomite electrode delivered a high specific capacitance of 552F g(-1) at a current density of 1 A g(-1), a good rate capability of 68.4% retention at 10 A g(-1), and superior cycling stability of 89.8% capacitance retention after 5000 cycles at 5 A g(-1). Furthermore, an asymmetric supercapacitor assembled via NiFeSx@CNTs@MnS@Diatomite and graphene delivered a maximum energy density of 28.9 Wh kg(-1) and a maximum power density of 9375 W kg(-1) at a potential of 1.5 V. This research lays the groundwork for ideal material preparation as well as a rational design for the electrode material, including property enhancement of diatomite-based material for use in supercapacitors. (C) 2021 Elsevier Inc. All rights reserved.

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