CONDENSED MATTER: ELECTRONIC STRUCTURE, ELECTRICAL, MAGNETIC, AND OPTICAL PROPERTIES |
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First Principles Study of Adsorption and Reaction of CO on SrTiO3 (100) Surface: the Role of Surface Oxygen Vacancies |
YUN Jiang-Ni1, ZHANG Zhi-Yong1, YAN Jun-Feng1, ZHANG Fu-Chun2 |
1Institute of Photonics and Photon-Technology, Northwest University, Xi'an 7101272College of Physics and Electronic Information, Yan'an University, Yan'an 716000 |
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Cite this article: |
YUN Jiang-Ni, ZHANG Zhi-Yong, YAN Jun-Feng et al 2010 Chin. Phys. Lett. 27 017101 |
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Abstract The adsorption and reaction of CO on SrTiO3 (100) surface with and without surface oxygen vacancy are investigated by the first-principles calculation based on the density functional theory. The calculated results reveal that the oxygen vacancy site prefers to the activation of the C-O bond. The adsorption energies increase to 1.0855 and 0.3245eV for defect-CO and defect-OC orientations, respectively. Particularly the C-O bond is elongated by about 0.1285 Å in the defect-OC orientation compared with that in the Ti-OC one without surface oxygen vacancies. There is predominantly a chemisorption mechanism between the CO molecule and the surface in the defect-CO orientation.
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Keywords:
71.15.Mb
68.35.-p
73.20.At
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Received: 15 June 2009
Published: 30 December 2009
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PACS: |
71.15.Mb
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(Density functional theory, local density approximation, gradient and other corrections)
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68.35.-p
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(Solid surfaces and solid-solid interfaces: structure and energetics)
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73.20.At
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(Surface states, band structure, electron density of states)
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[1] Martra G et al 2003 J. Phys. Chem. B 107 6096 [2] Yamagishi S et al 2005 J. Phys. Chem. B 109 8899 [3] Sorescu D C and Yates J T 2002 J.Phys. Chem. B 106 6184 [4] Halim W S A 2007 Appl. Surf. Sci. 253 8974 [5] Sun B Z, Chen W K, Zheng J D and Lu C H 2008 Appl.Surf. Sci. 255 3141 [6] Azad S, Engelhard M H and Wang L Q 2005 J. Phys.Chem. B 109 10327 [7] Wu X Y, Selloni A and Nayak S K 2004 J. Chem. Phys. 120 4512 [8] Menetrey M 2004 J. Phys. Chem. B 108 12858 [9] Rodriguez J A, Garcia J and Gonzalez L 2002 Chem.Phys. Lett. 365 380 [10] Rodriguez J A, Azad S, Wang L Q, Garcia J, Etxeberria Aand Gonzalez L 2003 J. Chem. Phys. 118 6562 [11] Zhang H J, Chen G and Li Z H 2007 Appl. Surf. Sci. 253 8345 [12] Hu Y, Griffiths K and Norton P R 2009 Surf. Sci. 603 1740 [13] Yun J N, Zhang Z Y and Zhang F C 2008 Chin. Phys.Lett. 25 3364 [14] Delley B 1990 J. Chem. Phys. 92 508 [15] Perdew J P, Wang Y 1992 Phys. Rev. B 45 13244 [16] Monkhorst H J and Pack J D 1976 Phys. Rev. B 13 5188 [17] Lide D R 1992 (Florida: CRC) [18] Bickel N, Schmidt G, Heinz K and Muller K 1989 Phys.Rev. Lett. 62 2009 |
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