4.6 Article

A novel single-atom catalyst for CO oxidation in humid environmental conditions: Ni-embedded divacancy graphene

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 8, 期 1, 页码 287-295

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9ta08525d

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资金

  1. Fundamental Research Funds for National Natural Science Foundation of China [21703052, 21607029, 21777033]
  2. Central Universities [2017B12914, 2015B01914]
  3. China Postdoctoral Science Foundation [2015M571652]
  4. Natural Science Foundation of Jiangsu Province [BK20161506]
  5. National 973 Plan Project [2015CB057803]
  6. Science and Technology Planning Project of Guangdong Province [2017B020216003]
  7. Science and Technology Program of Guangzhou City [201707010359]
  8. 1000 Plan for Young Professionals Program of China

向作者/读者索取更多资源

The degradation of catalysts for CO oxidation in humid air is a common issue owing to the blocking of the active site by the adsorption and dissociation of water molecules. In order to evaluate the effect of humidity on the CO oxidation, the adsorption and dissociation of the common gas molecules in air, namely CO, O-2, H2O, and N-2, on single Ni-embedded divacancy graphene (Ni-DG) have been investigated using first-principles calculations. It was found that all the molecules keep their molecular state and the adsorption energy of CO is much larger than those of the other molecules. In addition, the CO molecules can sufficiently substitute the pre-adsorbed O-2, H2O, and N-2 molecules with small energy barriers, indicating that the active site of the Ni-DG will not be blocked by water molecules in humid environments. At most two CO molecules can be chemically adsorbed on the Ni-DG, indicating that a new termolecular Eley-Rideal (TER) mechanism is preferred, and the energy barrier for the rate-limiting step (2CO + O-2 -> OCOOCO) is only 0.34 eV. Hirshfeld charge analysis shows that the charge transfer from the O-2-2 pi* orbital to the CO-2 pi* orbital plays an important role in the CO oxidation via the TER mechanism. Overall, our results show that the low-cost Ni-DG is an efficient catalyst for CO oxidation, even in humid air at low temperature.

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