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Plasma-assisted fabrication of NiO nanoarchitectures: from design to oxygen evolution electrocatalysis

Academic Article
Publication Date:
2025
abstract:
Electrocatalytic oxygen evolution reaction (OER), playing a key role in water splitting processes to yield green hydrogen, is critically dependent on the implementation of stable, efficient, and economically viable catalysts. Among the various runners, NiO-based nanomaterials have recently gained considerable attention. Herein, we focus on the plasma enhanced-chemical vapor deposition (PE-CVD) of NiO nanoarchitectures, grown on conducting glasses from a fluorinated Ni(ii) precursor and subjected to a comprehensive experimental and theoretical characterization. Modulations of the growth temperature from 100 to 400 degrees C yielded a progressive evolution from hierarchical quasi-1D nanopillars, featuring the surface presence of CFx groups, to cauliflower-like structures, characterized by a homogeneous fluorine distribution inside NiO. The open morphology of the 100 degrees C-grown system, possessing a higher content of structural defects, enhanced charge carrier transport and promoted reactants/products diffusion, yielding the best activity among the investigated materials (overpotential of approximate to 390 mV at 10 mA x cm-2 and Tafel slope of 39 mV x dec-1). Density functional theory (DFT) modeling indicates that CFx groups create intra-gap empty states which could promote OER activity. The obtained performances compare favorably with various Ni-based electrocatalysts reported up to date, opening the door to additional research developments towards sustainable energy generation.
Iris type:
Articolo su Rivista
List of contributors:
Maccato, C.; Barreca, D.; Signorin, L.; Scattolin, E.; Tabacchi, G.; Fois, E.; Sada, C.; Lebedev, O. I.; Gasparotto, A.; Modin, E.; Pierobon, E.; El Habra, N.; Rizzi, G. A.
Authors of the University:
FOIS ETTORE SILVESTRO
TABACCHI GLORIA
Handle:
https://irinsubria.uninsubria.it/handle/11383/2204451
Full Text:
https://irinsubria.uninsubria.it//retrieve/handle/11383/2204451/464131/reprint_NiO_OER.pdf
Published in:
CATALYSIS SCIENCE & TECHNOLOGY
Journal
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URL

https://pubs.rsc.org/en/content/articlehtml/2025/cy/d5cy00833f
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