4.6 Article

Single-atom metal-modified graphenylene as a high-activity catalyst for CO and NO oxidation

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 22, Issue 28, Pages 16224-16235

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0cp01062f

Keywords

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Funding

  1. National Natural Science Foundation of China [61674053, 11904328, 61904161]
  2. Science & Technology Innovation Talents in Universities of Henan Province [18HASTIT030]
  3. Henan Province [2017GGJS179]
  4. Key Scientific Research Project of Henan College [20A140030]
  5. Key Technologies Research and Development Program of Henan Province [202102210201]
  6. Open Research Fund of Zhengzhou Normal University
  7. Aid program for Science and Technology Innovative Research Team

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Herein, the adsorption behaviors and interactions of different gas species on single-metal atom-anchored graphenylene (M-graphenylene, M = Mn, Co, Ni, and Cu) sheets were investigated by first-principles calculations. At first, the single metal atom tends to adsorb on the hollow or bridge site of graphenylene, and the formed M-graphenylene systems exhibit varied magnetic properties. The reactants (NO, CO, O-2, O, CO2, and NO2) adsorbed on the Mn-, Co-, and Ni-graphenylene sheets exhibit higher stability than those adsorbed on the Cu-graphenylene sheet. Moreover, the co-adsorption configurations of NO-O-2, CO-O-2, 2NO, and 2CO on the M-graphenylene sheets were comparably studied, which are considered as the initial states for NO and CO oxidation. It was found that the energy barriers for the formation of OONO and OOCO complexes on Mn-graphenylene by the Langmuir-Hinshelwood (LH) mechanism are larger than those in the case of Co-graphenylene (<0.4 eV). The possible reactions for the oxidation of 2CO by the 2NO molecules on the M-graphenylene sheets were also considered, because of the adsorbed NO molecules are more stable than the CO and O-2 molecules. Furthermore, the energy barrier for the oxidation of CO on Mn-graphenyleneviathe Eley-Rideal (ER) mechanism (2NO + 2CO -> 2CO(2)+ N-2) is smaller (<0.3 eV) than those in the cases of other substrates. These results illustrate that the single-metal atom-modified graphenylene can be used as a potential novel carbon-based catalyst with high activity.

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