Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidation

Abstract During the present study, single-atom catalysts (SACs) were designed by decorating graphitic carbon nitride with copper (I) and nickel (I) ions. The designed catalysts were employed for studying the possible reaction pathways for benzene to phenol oxidation. The calculations were carried ou...

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Main Authors: Negin Arab, Hossein Tavakol
Format: Article
Language:English
Published: Nature Portfolio 2025-04-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-95763-8
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author Negin Arab
Hossein Tavakol
author_facet Negin Arab
Hossein Tavakol
author_sort Negin Arab
collection DOAJ
description Abstract During the present study, single-atom catalysts (SACs) were designed by decorating graphitic carbon nitride with copper (I) and nickel (I) ions. The designed catalysts were employed for studying the possible reaction pathways for benzene to phenol oxidation. The calculations were carried out using the density functional theory (DFT) method at the M06-2X/def2-SVP level of theory. To select the catalyst among various spin multiplicities and decoration places, the relative energies, interaction energies, and energy gaps were compared, which showed the smaller spin multiplicity and center position of the decorated metal was the most suitable case for both SACs. To investigate the reaction process, two possible routes were considered and the relative energies and Gibbs free energies of all involved species in these pathways were calculated in the gas phase. The gas phase energies confirmed the reliability of the proposed routes and the higher ability of Ni-based SAC than Cu-based SAC by both thermodynamic and kinetic data. To consider the solvent effects, the polarizable continuum model(PCM) was employed using acetonitrile and methanol as two common solvents. The obtained energy values in solvents confirmed the higher potency of Ni SAC versus Cu SAC for this reaction and both solvents showed nearly similar overall barriers and thermodynamic values.
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spelling doaj-art-6c99add8461d4dcfafc5f5ccde7058d32025-08-20T02:11:46ZengNature PortfolioScientific Reports2045-23222025-04-0115111510.1038/s41598-025-95763-8Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidationNegin Arab0Hossein Tavakol1Department of Chemistry, Isfahan University of TechnologyDepartment of Chemistry, Isfahan University of TechnologyAbstract During the present study, single-atom catalysts (SACs) were designed by decorating graphitic carbon nitride with copper (I) and nickel (I) ions. The designed catalysts were employed for studying the possible reaction pathways for benzene to phenol oxidation. The calculations were carried out using the density functional theory (DFT) method at the M06-2X/def2-SVP level of theory. To select the catalyst among various spin multiplicities and decoration places, the relative energies, interaction energies, and energy gaps were compared, which showed the smaller spin multiplicity and center position of the decorated metal was the most suitable case for both SACs. To investigate the reaction process, two possible routes were considered and the relative energies and Gibbs free energies of all involved species in these pathways were calculated in the gas phase. The gas phase energies confirmed the reliability of the proposed routes and the higher ability of Ni-based SAC than Cu-based SAC by both thermodynamic and kinetic data. To consider the solvent effects, the polarizable continuum model(PCM) was employed using acetonitrile and methanol as two common solvents. The obtained energy values in solvents confirmed the higher potency of Ni SAC versus Cu SAC for this reaction and both solvents showed nearly similar overall barriers and thermodynamic values.https://doi.org/10.1038/s41598-025-95763-8DFTSingle-Atom catalystsBenzeneOxidationPhenol
spellingShingle Negin Arab
Hossein Tavakol
Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidation
Scientific Reports
DFT
Single-Atom catalysts
Benzene
Oxidation
Phenol
title Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidation
title_full Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidation
title_fullStr Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidation
title_full_unstemmed Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidation
title_short Density functional theory study of nickel and copper single-atom catalysts on graphitic carbon nitride for benzene to phenol oxidation
title_sort density functional theory study of nickel and copper single atom catalysts on graphitic carbon nitride for benzene to phenol oxidation
topic DFT
Single-Atom catalysts
Benzene
Oxidation
Phenol
url https://doi.org/10.1038/s41598-025-95763-8
work_keys_str_mv AT neginarab densityfunctionaltheorystudyofnickelandcoppersingleatomcatalystsongraphiticcarbonnitrideforbenzenetophenoloxidation
AT hosseintavakol densityfunctionaltheorystudyofnickelandcoppersingleatomcatalystsongraphiticcarbonnitrideforbenzenetophenoloxidation