Citation: YAO Shu-Juan, SHAO Xin, CUI Shou-Xin, ZHAO Jian-Wei, ZHOU Cheng-Gang. Adsorption and Migration of Pt Atoms on γ-Al2O3(001) Surface[J]. Acta Physico-Chimica Sinica, ;2011, 27(08): 1816-1822. doi: 10.3866/PKU.WHXB20110814 shu

Adsorption and Migration of Pt Atoms on γ-Al2O3(001) Surface

  • Received Date: 26 March 2011
    Available Online: 16 June 2011

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  • We present a systematic study using density functional theory (DFT) with the generalized gradient approximation (GGA) method to understand the adsorption and migration of Pt atoms on the γ-Al2O3(001) surface. Energetically the most favorable adsorption sites were identified and all these adsorption configurations were found to show substantial structural relaxation. Our calculated adsorption and energy barrier of migration results indicate that the Pt clusters can be stably anchored onto the surface. A significantly higher adsorption energy at the O site is largely attributed to the fact that charge transfer from Pt to O atoms results in positively charged Pt atoms. The repulsion between Pt and Al atoms leads to much weaker bonds. The calculated average adsorption energies were found to be size and shape dependent and in general decrease as the number of Pt atoms increases. The highest energy barrier for Pt atom migration on the γ-Al2O3(001) surface is about 0.51 eV. The formation of a metal cluster would be strongly preferred upon high Pt atom loading. Consequently, the evolution of Pt atoms on the γ-Al2O3(001) surface is unlikely to be smooth and agglomeration can occur under certain conditions.

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    1. [1]

      (1) Wallin, M.; Gronbeck, H.; Spetz, A. L.; Eriksson, M.; Skoglundh, M. J. Phys. Chem. B 2005, 109 (19), 9581.  

    2. [2]

      (2) Sun, M.; Croiset, E. B.; Hudgins, R. R.; Silveston, P. L.; Menzinger, M. Ind. Eng. Chem. Res. 2003, 42 (1), 37.  

    3. [3]

      (3) Olsson, L.;Westerberg, B.; Persson, H.; Fridell, E.; Skoglundh, M.; Andersson, B. J. Phys. Chem. B 1999, 103 (47), 10433.  

    4. [4]

      (4) N , L. T.; Xu, L.; Grant, A.W.; Campbell, C. T. J. Phys. Chem. B 2003, 107 (5), 1174.  

    5. [5]

      (5) Xu, G.; Zhang, Z. G. J. Power Sources 2006, 157 (1), 64.  

    6. [6]

      (6) Hoang-Van, C.; Zegaoui, O. Appl. Catal. A-Gen., 1995, 130, 89.  

    7. [7]

      (7) Petersson, M.; Jonsson, D.; Persson, H.; Cruise, N.; Andersson, B. J. Catal. 2006, 238 (2), 321.  

    8. [8]

      (8) Bai, Y.; Lu, C.; Ma, L.; Chen, P.; Zheng, Y.; Li, X. Chin. J. Catal. 2006, 27, 275. [白赢, 卢春山, 马磊, 陈萍, 郑遗凡, 李小年. 催化学报, 2006, 27, 275.]

    9. [9]

      (9) Kim, D. H.; Lim, M. S. Appl. Catal. A-Gen. 2002, 224 (1-2), 27.  

    10. [10]

      (10) Wang, X. L.; Pan, X. M.; Lin, R.; Kou, S. Y.; Zou,W. B.; Ma, J. X. Acta Phys. -Chim. Sin. 2010, 26, 1296. [王晓蕾, 潘相敏, 林瑞, 寇素原, 邹卫兵, 马建新. 物理化学学报, 2010, 26, 1296.]

    11. [11]

      (11) Márquez, A. M.; Sanz, J. F. Appl. Surf. Sci. 2004, 238 (1-4), 82.  

    12. [12]

      (12) Kang, J. H.; Menard, L. D.; Nuzzo, R. G.; Frenkel, A. I. J. Am. Chem. Soc. 2006, 128 (37), 12068.  

    13. [13]

      (13) Zhou, C.;Wu, J.; Kumar, T. J. D.; Balakrishnan, N.; Forrey, R. C.; Cheng, H. J. Phys. Chem. C 2007, 111 (37), 13786.  

    14. [14]

      (14) Ishimoto, R.; Jung, C.; Tsuboi, H.; Koyama, M.; Endou, A.; Kubo, M.; Del Carpio, C. A.; Miyamoto, A. Appl. Catal. A-Gen. 2006, 305 (1), 64.  

    15. [15]

      (15) Valentino, R. C.; Alexie, M. K.; Yashar, Y.; Andrew, M. R. Phys. Rev. B 2005, 72 (8), 081409.

    16. [16]

      (16) Shang, C.; Liu, Z. P. J. Phys. Chem. C 2010, 114 (40),16989.  

    17. [17]

      (17) Liu, Z. P.;Wang, C. M.; Fan, K. N. Angew. Chem. Int. Edit. 2006, 45 (41), 6865.  

    18. [18]

      (18) Wang, C. M.; Fan, K. N.; Liu, Z. P. J. Am. Chem. Soc. 2007, 129 (9), 2642.  

    19. [19]

      (19) Tang, Q. L.; Liu, Z. P. J. Phys. Chem. C 2010, 114 (18), 8423.  

    20. [20]

      (20) Meier, D. C.; odman, D.W. J. Am. Chem. Soc. 2004, 126 (6), 1892.  

    21. [21]

      (21) Chen, M. S.; odman, D.W. Science 2004, 306, 252.  

    22. [22]

      (22) Farmer, J. A.; Campbell, C. T. Science 2010, 329, 933.  

    23. [23]

      (23) Xu, L.; Henkelman, G.; Campbell, C. T.; Jónsson, H. Surf. Sci. 2006, 600 (6), 351.

    24. [24]

      (24) Gómez, T.; Florez, E.; Rodriguez, J. A.; Illas, F. J. Phys. Chem. C 2009, 114 (3), 1622.

    25. [25]

      (25) Segall, M. D.; et al. J. Phys.-Condens. Matter 2002, 14 (11), 2717.  

    26. [26]

      (26) Payne, M. C.; Teter, M. P.; Allan, D. C.; Arias, T. A.; Joannopoulos, J. D. Rev. Mod. Phys. 1992, 64 (4), 1045.  

    27. [27]

      (27) Kresse, G.; Joubert, D. Phys. Rev. B 1999, 59 (3), 1758.  

    28. [28]

      (28) Monkhorst, H. J.; Pack, J. D. Phys. Rev. B 1976, 13 (12), 5188.  

    29. [29]

      (29) Mulliken, R. S. J. Chem. Phys. 1955, 23 (10), 1833.  

    30. [30]

      (30) Li, Y. N.; Lü, Y.; Zhou, L. C.; Chen, L.; Li, S. M. Acta Phys. Chim. Sin., 2010, 26, 2793. [李亚娜, 吕洋, 周立川, 陈理, 李慎敏. 物理化学学报, 2010, 26, 2793.]

    31. [31]

      (31) Halgren, T. A.; Lipscomb,W. N. Chem. Phys. Lett. 1977, 49 (2), 225.  

    32. [32]

      (32) Liu, L. M.; et al. J. Phys.: Condens. Matter 2003, 15 (47), 8103.  

    33. [33]

      (33) Zhang, J. J.; Zhang, H. Acta Phys. Sin. 2010, 59, 4143. [张建军, 张红. 物理学报, 2010, 59: 4143.]

    34. [34]

      (34) Kittel, C. In Introduction to Solid State Physics, 7th ed.; John Wiley: New York, 1996; p176.

    35. [35]

      (35) Gupta, S. K.; Nappi, B. M.; Gingerich, K. A. Inorg. Chem. 1981, 20 (4), 966.  


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