• Title of article

    Cluster and periodic DFT calculations of adsorption and activation of CO2 on the Cu(hkl) surfaces

  • Author/Authors

    Wang، نويسنده , , Gui-Chang and Jiang، نويسنده , , Ling and Morikawa، نويسنده , , Yoshitada and Nakamura، نويسنده , , Junji and Cai، نويسنده , , Zunsheng and Pan، نويسنده , , Yinming and Zhao، نويسنده , , Xue-Zhuang، نويسنده ,

  • Issue Information
    هفته نامه با شماره پیاپی سال 2004
  • Pages
    13
  • From page
    205
  • To page
    217
  • Abstract
    The adsorption behavior and thermal activation of carbon dioxide on the Cu(1 1 1), Cu(1 0 0), and Cu(1 1 0) surfaces have been investigated by means of density functional theory calculations and cluster models and periodic slabs. According to the cluster models, the optimized results indicate that the basis set of C and O atoms has a distinct effect on the adsorption energy, but an indistinct one on the equilibrium geometry. For the CO2/Cu(hkl) adsorption systems studied here, the final structure of adsorbed CO2 is near linear and the preferred modes for the adsorption of CO2 onto the Cu(1 1 1), Cu(1 0 0), and Cu(1 1 0) surfaces are the side-on adsorption at the cross bridge site with an adsorption energy of 13.06 kJ/mol, the side-on adsorption at the short bridge site (13.54 kJ/mol), and the end-on adsorption on the on-top site with C–O bonds located along the short bridge site (26.01 kJ/mol), respectively. However, the calculated adsorption energies from periodic slabs are lower as compared to the experimental data as well as the cluster model data, indicating that the periodic slab approach of generalized gradient approximation in the density function theory may be not suitable to obtain quantitative information on the interaction of CO2 with Cu(hkl) surfaces.
  • Keywords
    Density functional calculations , Clusters , Carbon dioxide , Copper , Chemisorption , Single crystal surfaces
  • Journal title
    Surface Science
  • Serial Year
    2004
  • Journal title
    Surface Science
  • Record number

    1682378