Scalable production of foam-like nickel-molybdenum coatings plasma spraying as bifunctional electrocatalysts for water splitting
Foam-like NiMo coatings were produced from an inexpensive mixture of Ni, Al, and Mo powders via atmospheric plasma spraying. The coatings were deposited onto stainless-steel meshes forming a highly porous network mainly composed of nanostructured Ni and highly active Ni 4 Mo. High material loading (...
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Published in | Physical chemistry chemical physics : PCCP Vol. 25; no. 31; pp. 2794 - 287 |
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Main Authors | , , , , , |
Format | Journal Article |
Published |
09.08.2023
|
Online Access | Get full text |
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Summary: | Foam-like NiMo coatings were produced from an inexpensive mixture of Ni, Al, and Mo powders
via
atmospheric plasma spraying. The coatings were deposited onto stainless-steel meshes forming a highly porous network mainly composed of nanostructured Ni and highly active Ni
4
Mo. High material loading (200 mg cm
−2
) with large surface area (1769 cm
2
per cm
2
) was achieved without compromising the foam-like characteristics. The coatings exhibited excellent activity towards both hydrogen evolution (HER) and oxygen evolution (OER) reactions in alkaline media. The HER active coating required an overpotential of 42 mV to reach a current density of −50 mA cm
−2
with minimum degradation after a 24 h chronoamperometry test at −10 mA cm
−2
. Theoretical simulations showed that several crystal surfaces of Ni
4
Mo exhibit near optimum hydrogen adsorption energies and improved water dissociation that benefit the HER activity. The OER active coating also consisting of nanostructured Ni and Ni
4
Mo required only 310 mV to achieve a current density of 50 mA cm
−2
. The OER activity was maintained even after 48 h of continuous operation. We envisage that the development of scalable production techniques for Ni
4
Mo alloys will greatly benefit its usage in commercial alkaline water electrolysers.
Large-scale production of foam-like nanostructured Ni
4
Mo exhibiting high activity towards both hydrogen evolution and oxygen evolution reactions in alkaline media. |
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Bibliography: | https://doi.org/10.1039/d3cp01444d Electronic supplementary information (ESI) available. See DOI |
ISSN: | 1463-9076 1463-9084 |
DOI: | 10.1039/d3cp01444d |