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Remarkable Single Atom Catalyst of Transition Metal (Fe, Co & Ni) Doped on C 2 N Surface for Hydrogen Dissociation Reaction.

Ahmed Bilal ShahSehrish SarfarazMuhammad YarNadeem S SheikhHassan H HammudKhurshid Ayub
Published in: Nanomaterials (Basel, Switzerland) (2022)
Currently, hydrogen is recognized as the best alternative for fossil fuels because of its sustainable nature and environmentally friendly processing. In this study, hydrogen dissociation reaction is studied theoretically on the transition metal doped carbon nitride (C 2 N) surface through single atom catalysis. Each TMs@C 2 N complex is evaluated to obtain the most stable spin state for catalytic reaction. In addition, electronic properties (natural bond orbital NBO & frontier molecular orbital FMO) of the most stable spin state complex are further explored. During dissociation, hydrogen is primarily adsorbed on metal doped C 2 N surface and then dissociated heterolytically between metal and nitrogen atom of C 2 N surface. Results revealed that theFe@C 2 N surface is the most suitable catalyst for H 2 dissociation reaction with activation barrier of 0.36 eV compared with Ni@C 2 N (0.40 eV) and Co@C 2 N (0.45 eV) complexes. The activation barrier for H 2 dissociation reaction is quite low in case of Fe@C 2 N surface, which is comparatively better than already reported noble metal catalysts.
Keyphrases
  • transition metal
  • electron transfer
  • visible light
  • metal organic framework
  • highly efficient
  • quantum dots
  • room temperature
  • molecular dynamics
  • single molecule
  • reduced graphene oxide