4.4 Article

Multi-dimensional carbon nanofibers for supercapacitor electrodes

Journal

JOURNAL OF ELECTROCERAMICS
Volume 38, Issue 1, Pages 43-50

Publisher

SPRINGER
DOI: 10.1007/s10832-016-0055-9

Keywords

Electrospinning; Carbon nanofibers; Carbon nanotubes; Supercapacitors

Funding

  1. Ministry of Science, ICT & Future Planning
  2. Ministry of Trade, Industry and Energy (MOTIE) of Korea through the National Research Foundation [2016R1A2B3013592, 2016R1A5A1009926]
  3. Technology Innovation Program [10044410]
  4. Nano Material Technology Development Program [2015M3A7B4050308, 2016M3A7B4910635]
  5. Convergence Technology Development Program for Bionic Arm [NRF-2014M3C1B2048198]
  6. Pioneer Research Center Program [NRF-2014M3C1A3001208]
  7. Human Resource Training Program for Regional Innovation and Creativity [NRF-2014H1C1A1073051]
  8. Agency for Defense Development as a collaborative preliminary core technology research project
  9. Development Program of Manufacturing Technology for Flexible Electronics with High Performance [SC0970]
  10. Korea Institute of Machinery and Materials
  11. Development Program of Internet of Nature System [1.150090.01]
  12. UNIST

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Four different types of porous carbon nanofibers (CNFs), plain, hollow, multi-channel (MC), and hollowed MC, were fabricated using coaxial electrospinning and thermal treatment for supercapacitor electrodes. The influence of the porosity on the specific surface area (SSA), pore volumes, and electrochemical propoerties of porous CNFs were investigated. The comparisons of their properties are a valuable work with same methods, becuase electrochemical performances are depending on the measurement conditions. Among them, the hollowed MC CNF structure was indicated the highest SSA and pore volumes. In addition, their hybrid structures with multi-walled carbon nanotubes (MWCNTs) were analyzed in therms of their porosity, SSA, and electrochemical properties for supercapacitors (specific capacitance and long-term cycling). These hybrid structures can improve overall porosity and electrochemical propoerties due to the extra mesoporous structures formed by entangling MWCNTs. In conclusion, these porous CNFs have a promising potential for various fields which need high porosity and SSA, and can be used as the platforms for catalysts, sensors, or energy devices.

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