4.6 Article

A computational study of CO oxidation reactions on metal impurities in graphene divacancies

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 20, Issue 4, Pages 2284-2295

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7cp07397f

Keywords

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Funding

  1. National Natural Science Foundation of China [U1404109, 11504334, 11791240177, U1504108, 11704005, 61674053]
  2. Natural Science Foundation of Henan Province [162300410325]
  3. Science & Technology Innovation Talents in Universities of Henan Province [18HASTIT030]
  4. Science Fund of Educational Department of Henan Province [17A140031]

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Based on the density functional theory calculations, the formation geometry, electronic properties, and catalytic activity of metal impurities in divacancy graphene (M-DG, M = Mo, Fe, Co, and Ni) were systematically investigated. It has been found that the reactive gases have different stabilities on M-DG substrates, and these quite stable substrates exhibit high catalytic activity for CO oxidation by comparing the traditional Eley-Rideal (ER) and Langmuir-Hinshelwood (LH), as well as the new termolecular ER (TER) mechanisms. For the Co-DG substrate, the coadsorption of O-2 and CO as a starting step is an energetically more favorable process, whereas the dissociation reaction of O-2 molecules on Mo-DG substrate has a much smaller energy barrier, and the generation of atomic oxygen is active for CO oxidation. These results indicate that the varied adsorption behaviors of reactive gases on M-DG substrates can determine the catalytic pathways and energy barriers, which give us insight into the surface reactivity of graphene-metal composite catalysis in energy-related devices.

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