4.6 Article

Electrospun Carbon Nanofibers with Embedded Co-Ceria Nanoparticles for Efficient Hydrogen Evolution and Overall Water Splitting

Journal

MATERIALS
Volume 13, Issue 4, Pages -

Publisher

MDPI
DOI: 10.3390/ma13040856

Keywords

electrospinning; carbon nanofiber support; overall water splitting; transition-metal-based electrocatalysts

Funding

  1. Basic Science Research Program through the National Research Foundation (NRF) of Korea - Ministry of Science, ICT, and Future Planning [2019R1A2C2006997]
  2. Korea Basic Science Institute (KBSI) National Research Facilities & Equipment Center - Korea government (Ministry of Education) [2019R1A6C1010031]
  3. Korea Institute of Industrial Technology [kitech JA-19-0001]
  4. Gyeongi-Do Technology Development Program [kitech IZ-19-0003]
  5. National Research Foundation of Korea [2019R1A2C2006997, 2019R1A6C1010031] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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In this study, simple electrospinning combined with pyrolysis were used to fabricate transition-metal-based-nanoparticle-incorporated carbon nanofiber (CNF) electrocatalysts for a high-efficiency hydrogen evolution reaction (HER) and overall water splitting. Co-CeO2 nanoparticle-incorporated carbon nanofibers (Co-CeO2@CNF) exhibit an outstanding electrocatalytic HER performance with an overpotential and Tafel slope of 92 mV and 54 mV/dec, respectively. For the counterpart, electrolysis, we incorporate the widely used Ni2Fe catalyst with a high oxygen evolution reaction (OER) activity into the carbon nanofiber (Ni2Fe@CNF). To evaluate their electrochemical properties for the overall water splitting, Co-CeO2@CNF and Ni2Fe@CNF were used as the HER and OER electrocatalysts in an alkaline electrolyzer. With the paired Co-CeO2@CNF and Ni2Fe@CNF electrodes, an overall water splitting current density of 10 mA/cm(2) was achieved by applying 1.587 V across the electrodes with a remarkably lower overpotential of 257 mV compared to that of an electrolyzer comprised of Pt/C and IrO2 electrodes (400 mV). Owing to the conformal incorporation of nanoparticles into the CNF, the electrocatalysts exhibit significant long-term durability over 70 h of overall water splitting. This study provides rational designs of catalysts with high electrochemical catalytic activity and durability to achieve overall water splitting.

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