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  4. Nanostructured NaFeS2 as a cost-effective and robust electrocatalyst for hydrogen and oxygen evolution with reduced overpotentials
 
research article

Nanostructured NaFeS2 as a cost-effective and robust electrocatalyst for hydrogen and oxygen evolution with reduced overpotentials

Dileepkumar, V. G.
•
Pratapkumar, C.
•
Viswanatha, Ramarao
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December 15, 2021
Chemical Engineering Journal

One of the biggest challenges currently in the field of energy generation and conservation is to develop a stable, scalable and cost-effective electrocatalyst with reduced overpotentials for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). This unprecedented effort presents a robust, non-costly ternary alkali metal-based chalcogenide (NaFeS2) as an effective and highly active electrocatalyst prepared by the hydrothermal method. The monocrystalline nature of the NaFeS2 nanostructures was shown using SAED patterns. The differences in the atomic radii of Na and Fe favors the formation of Fe-S bonds largely contributing to the enhanced electrocatalytic activity of NaFeS2. Further, a decrease in the kinetic energy of the catalytic reaction increases the electrocatalytic property of NaFeS2. We also highlighted the contribution of the high surface area, the Fermi level and the d-orbitals of Fe in enhancing the OER. NaFeS2/NF shows a current density of 200 mA cm-2 with a small potential of 1.60 V and an overpotential of 370 mV indicating that the material possesses a remarkable electrocatalytic activity outperforming other electrocatalysts in the category. Further, by displaying a potential of -220 mV, NaFeS2/NF attained a current density of -100 mA cm-2, demonstrating a significantly improved HER performance of the electrocatalyst. Also, at a potential of -220 mV, the material exhibited a high stability at a continuous electrolysis of about 30 h. The density functional theory (DFT) calculations indicated that out of the possible adsorption sites on the NaFeS2 surface, only (010) and (100) exhibit catalytically preferential adsorption energy (EH) values, which are eventually responsible for the superior electrocatalytic activity. Finally, both the experimental studies and the DFT calculations complement each other and present NaFeS2 as a potentially promising bifunctional electrocatalyst for water splitting applications, which can be scaled-up and deployed for large-scale hydrogen productions.

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Type
research article
DOI
10.1016/j.cej.2021.131315
Web of Science ID

WOS:000727804600002

Author(s)
Dileepkumar, V. G.
Pratapkumar, C.
Viswanatha, Ramarao
Basavaraja, Basavanakote M.
Maphanga, Rapela R.
Chennabasappa, Madhu
Srinivasa, Narasimha
Ashoka, Siddaramanna
Chen, Zhong
Rtimi, Sami  
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Date Issued

2021-12-15

Publisher

ELSEVIER SCIENCE SA

Published in
Chemical Engineering Journal
Volume

426

Article Number

131315

Subjects

Engineering, Environmental

•

Engineering, Chemical

•

Engineering

•

electrocatalysis

•

hydrogen evolution reaction (her)

•

oxygen evolution reaction (oer)

•

dft calculations

•

nafes2 nanostructures

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ni foam

•

water

•

efficient

•

catalysts

•

benchmarking

•

dissolution

•

electrode

•

films

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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Available on Infoscience
January 1, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/184254
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