4.7 Article

Theoretical studies of MXene-supported single-atom catalysts: Os1/Ti2CS2 for low-temperature CO oxidation

期刊

SCIENCE CHINA-MATERIALS
卷 65, 期 5, 页码 1303-1312

出版社

SCIENCE PRESS
DOI: 10.1007/s40843-021-1950-0

关键词

single-atom catalyst; MXene; CO oxidation; termolecular Langmuir-Hinshelwood; 2D nanomaterial

资金

  1. National Natural Science Foundation of China [21963005, 21763006, 22033005, 22038002]
  2. Natural Science Foundation of Guizhou University [[2021]40, [2020] 32]
  3. Guangdong Provincial Key Laboratory of Catalysis [2020B121201002]

向作者/读者索取更多资源

A new sulfur-functionalized MXene Ti2C-supported osmium-metal single-atom catalyst (SAC) Os-1/Ti2CS2 has been identified with high catalytic activity for CO oxidation at low temperatures. Theoretical studies suggest that the termolecular Langmuir-Hinshelwood-B (TLH-B) mechanism is the most feasible for CO oxidation on Os-1 SA, with a low reaction barrier energy of 0.74 eV. These results provide insights for designing new sulfur-functionalized two-dimensional MXene catalytic nanomaterials.
We report herein a new sulfur-functionalized MXene Ti2C (Ti2CS2)-supported osmium-metal single-atom catalyst (SAC) Os-1/Ti2CS2 with high low-temperature catalytic activity for CO oxidation. Using periodic density functional theory calculations, the most stable SAC, Os-1/Ti2CS2, has been screened from a series of group 8-11 transition metal SACs M-1/Ti2CS2 (M = Fe, Co, Ni, Cu; Ru, Rh, Pd, Ag; Os, Ir, Pt, Au). The calculations show that it is favorable for O-2 and CO to be coadsorbed on the Os-1 single atom (SA) of Os-1/Ti2CS2 and the adsorption energy of the first O-2 molecule is slightly higher than that of CO. Moreover, the termolecular co-adsorption of O-2 + 2CO on Os-1 SA is also possible, which is favorable for CO oxidation on Os-1 SA through a novel three-molecule reaction mechanism. Accordingly, four different catalytic mechanisms, the Langmuir-Hinshelwood (L-H), Eley-Rideal (E-R), termolecular Langmuir-Hinshelwood-A (TLH-A) and termolecular Langmuir-Hinshelwood-B (TLH-B), are systematically studied for CO oxidation by O-2 on OW Ti2CS2. The theoretical studies indicate that the TLH-B mechanism is the most feasible for CO oxidation with the reaction barrier energy of only 0.74 eV, which is far lower than for L-H, E-R and TLH-A with barrier energies of 1.06, 1.09 and 1.47 eV, respectively. The results provide fundamental understanding to the surface chemistry of MXene and designing new sulfur-functionalized two-dimensional MXene catalytic nanomaterials.

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