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J. Mater. Sci. Technol. 2010, 26(02) 97-105 DOI:     ISSN: 1005-0302 CN: 21-1315/TG

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Keywords
Water monomer
Adsorption
Surface bonding
Transition metals
Authors
LI Ji-Biao
ZHU Ku-Long
YU Fu-Hui
PubMed
Article by Li,J.B
Article by Zhu,K.L
Article by Yu,F.H

Metals Supported Water Monomers: the Bonding Nature Revisited

Jibiao Li, Shenglong Zhu, Fuhui Wang

State Key Laboratory for Corrosion and Protection, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110015, China

Abstract

A single water monomer is known as a hard-to-observe molecule even in the presence of metal surfaces as supporting matrix. This review highlights effort in experimental characterizations and theoretical modeling of transition metals supported water monomers with attention given to its structure and bonding, together with the insights that we have provided into the bonding nature of the water-interactions by the newly employed projected PDOS (partial density of states) difference analysis, which is proved to be an effective tool to be elucidate such bonding nature. The general s-d hybridization and d-shell effect are summarized, and how these effects can be tuned by tailoring local surface configurations is discussed.

Keywords Water monomer   Adsorption   Surface bonding   Transition metals  
Received 2009-07-31 Revised 2009-12-04 Online: 2010-02-28 
DOI:
Fund:

the Knowledge Innovation Program of the Chinese Academy of Science (Grant No. YYYJ-0912)

Corresponding Authors:
Email: fhwang@imr.ac.cn
About author:

References:
[1]V.F. Petrenko and R.W. Whitworth: Physics of Ice,Oxford University Press, Oxford, 1999.
[2] A. Verdaguer, G.M. Sacha, H. Bluhm and M. Salmeron: Chem. Rev, 2006, 106, 1478.
[3] D. Bonn and D. Ross: Rep. Prog. Phys, 2001, 64, 1085.
[4] W.A. Brown and A.S. Bolina: Mon. Not. R. Astron. Soc, 2007, 374, 1006.
[5] R. Papoular: Mon. Not. R. Astron. Soc, 2005, 362, 489.
[6] B.J. Murray, D.A. Knopf and K. Bertram: Nature, 2005, 434, 202.
[7]L.L. Shreir, R.A. Jarman and G.T. Burstein: Corrosion, Butterworth-Heinemann, Oxford, 1994.
[8]D.J. Young: High Temperature Oxidation and Corrosion of Metals, Elsevier Ltd., Cambridge UK, 2008.
[9] Z.G. Zou, J.H. Ye, K. Sayama and H. Arakawa: Nature, 2001, 414, 625.
[10]S. Basu: Recent Trends in Fuel Cell Science and Technology, Anamaya Publishers, New Delhi, 2007.
[11]I. Chorkendorff and J.W. Niemantsverdriet: Concepts of Modern Catalysis and Kinetics Concepts, Wiley-VCH, Weinheim, 2003.
[12] A.A. Gokhale, J.A. Dumesic and M. Mavrikakis: J. Am. Chem. Soc, 2008, 130, 1402.
[13] J.S. Filhol and M. Neurock: Angew. Chem., Int. Edit, 2006, 45, 402.
[14] P.A. Thiel and T.E. Madey: Surf. Sci. Rep, 1987, 7, 211.
[15]M.A. Henderson: Surf. Sci. Rep., 2002, 46, 5.
[16] A. Verdaguer, G.M. Sacha, H. Bluhm and M. Salmeron: Chem. Rev, 2006, 106, 1478.
[17] M. Ito: Surf. Sci. Rep, 2008, 63, 329.
[18]T. Schiros: Water-Metal Surface: Insights from Corelevel Spectroscopy and Density Functional Theory, PhD Thesis, Stockholm University, 2008.
[19] A. Michaelides: Appl. Phys. A, 2006, 85, 415.
[20] P.A. Thiel and T.E. Madey: Surf. Sci. Rep, 1987, 7, 211.
[21]M.A. Henderson: Surf. Sci. Rep., 2002, 46, 5.
[22] J. Weissenrieder, A. Mikkelsen, J.N. Andersen, P.J. Feibelman and G. Held: Phys. Rev. Lett, 2004, 93, 196102.
[23] K. Andersson, A. Nikitin, L.G.M. Pettersson, A. Nilsson and H. Ogasawara: Phys. Rev. Lett, 2004, 93, 196101.
[24] N.S. Faradzhev, K.L. Kostov, P. Feulner, T.E. Madey and D. Menzel: Chem. Phys. Lett, 2005, 415, 165.
[25] T.E. Madey and J.T. Yates: Chem. Phys. Lett, 1977, 51, 77.
[26]M. Klaua and T.E. Madey: Surf. Sci., 1984, 136, L42.
[27] K. Morgenstern and K.H. Rieder: J. Chem. Phys, 2002, 116, 5746.
[28] K. Morgenstern and K.H. Rieder: Chem. Phys. Lett, 2002, 358, 250.
[29] H. Gawronski, K. Morgenstern and K.H. Rieder: Eur. Phys. J. D, 2005, 35, 349.
[30] T. Mitsui, M.K. Rose, E. Fomin, D.F. Ogletree and M. Salmeron: Science, 2002, 297, 1850.
[31]E. Fomin, M.Tatarkhanov, T. Mitsui, M.Rose, D.F.
[32] Ogletree and M. Salmeron: Surf. Sci, 2006, 600, 542.
[33] T.K. Shimizu, A. Mugarza, J.I. Cerda, M. Heyde, Y.B. Qi, U. D.Schwarz, D.F. Ogletree and M. Salmeron: J. Phys. Chem. C, 2008, 112, 7445.
[34] M. Nakamura and M. Ito: Chem. Phys. Lett, 2000, 325, 293.
[35] M. Nakamura and M. Ito: Chem. Phys. Lett, 2001, 335, 170.
[36] M. Nakamura and M. Ito: Chem. Phys. Lett, 2004, 384, 256.
[37] M. Nakamura and M.Ito: Chem. Phys. Lett, 2005, 404, 346.
[38] S. Yamamoto, A. Beniya, K. Mukai, Y. Yamashita and J. Yoshinobu: J. Phys. Chem. B, 2005, 109, 5816.
[39] S. Andersson, C. Nyberg and C.G. Tengstal: Chem. Phys. Lett, 1984, 104, 305.
[40] M.S. Xu, P. Yang, W. Yang and S.J. Pang: Vacuum, 1992, 43, 1125.
[41] R. Brosseau, T.H. Ellis and M. Morin: J. Vac. Sci. Technol. A, 1990, 8, 2454.
[42] R. Brosseau, T.H. Ellis, M. Morin and H. Wang: J. Electron. Spectrosc. Relat. Phenom, 1990, 54-55, 659.
[43] T. Komeda, H. Fukidome, Y. Kim, M. Kawai, Y. Sainoo and H. Shigekawa: Jpn. J. Appl. Phys, 2002, 41, 4932.
[44] T. Kumagai, M. Kaizu, and H. Okuyama, S. Hatta and T. Aruga, I. Hamada and Y. Morikawa: Phys. Rev. B, 2009, 79, 035423.
[45] A. Michaelides, V.A. Ranea, P.L. de Andres and D.A. King: Phys. Rev. Lett, 2003, 90, 216102.
[46] A. Michaelides, A. Alavi and D.A. King: J. Am. Chem. Soc, 2003, 125, 2746.
[47] V.A. Ranea, A. Michaelides, R. Ramirez, J.A. Verges, P.L. de Andres and D.A. King: Phys. Rev. B, 2004, 69, 205411.
[48] A. Michaelides: Faraday Discuss, 2007, 136, 287.
[49] S. Meng, E.G. Wang and S.W. Gao: Phys. Rev. B, 2004, 69, 195404.
[50] Y.L. Cao and Z.X. Chen: Surf. Sci, 2006, 600, 4572.
[51] Y.L. Cao and Z.X. Chen: Phys. Chem. Chem. Phys, 2007, 9, 739.
[52]J.W. Chen, X.Y. Tu, K. Tian and S.S. Dai: Chin. J. Struct. Chem., 2006, 25, 909.
[53] M. Pozzo, G. Carlini, R. Rosei and D. Alfe: J. Chem. Phys, 2007, 126, 164706.
[54] D. Sebastiani and L. Delle Site: J. Chem. Theory Comput, 2005, 1, 78.
[55] J.B. Li, S.L. Zhu, H. Li, E.E. Oguzie, Y. Li and F.H.Wang: J. Phys. Chem. C, 2009, 113, 1931.
[56] J.E. MÄuller and J. Harris: Phys. Rev. Lett, 1984, 53, 2493.
[57] A. Ignaczak and J.A. Gomes: J. Electroanal. Chem, 1997, 420, 209.
[58] A. Ignaczak and J. Gomes: J. Mol. Struct.-Theochem, 1999, 464, 227.
[59] C.Y. Qin and J.L. Whitten: J. Phys. Chem. B, 2005, 109, 8852.
[60] S.W. Wang, Y.Z. Cao and P.A. Rikvold: Phys. Rev. B, 2004, 70, 205410.
[61] Q.L. Tang and Z.X. Chen: Surf. Sci, 2007, 601, 954.
[62] A. Michaelides, V.A. Ranea, P.L. de Andres and D.A. King: Phys. Rev. B, 2004, 69, 075409.
[63]J.B. Li, Y. Li, S.L. Zhu and F.H. Wang: Phys. Rev. B, 2006, 74, 154315.
[64] J.B. Li, S.L. Zhu, Y. Li and F.H. Wang: Phys. Rev. B, 2007, 76, 235433.
[65] J.B. Li, S.L. Zhu, Y. Li and F.H.Wang: J. Am. Chem. Soc, 2008, 130, 11140.
[66] J. Ren and S. Meng: J. Am. Chem. Soc, 2006, 128, 9282.
[67] J. Ren and S. Meng: Phys. Rev. B, 2008, 77, 054110.
[68] E. Salli, J.P. Jalkanen, K. Laasonen and L. Halonen: Mol. Phys, 2007, 105, 1271.
[69] J. Carrasco, A. Michaelides and M. Sche²er: J. Chem. Phys, 2009, 130, 184707.
[70] H. Ogasawara, B. Brena, D. Nordlund, M. Nyberg, A. Pelmenschikov, L.G.M. Pettersson and A. Nilsson: Phys. Rev. Lett, 2002, 89, 276102.
[71] S.R. Liu, H.J. Zhai and L.S. Wang: Phys. Rev. B, 2002, 65, 113401.
[72] M. Kurahashi and Y. Yamauchi: Surf. Sci, 2005, 590, 21.
[73] M. Kurahashi, T. Suzuki, X. Ju and Y. Yamauchi: Chem. Phys. Lett, 2003, 377, 519.
[74] R. Smoluchowski: Phys. Rev, 1941, 60, 661.
[75] L. Xiao, L. Zhuang, Y. Liu, J.T. Lu and H.D. Abru~na: J. Am. Chem. Soc, 2009, 131, 602.
[76] J. Greeley and J.K. NÁrskov: J. Phys. Chem. C, 2009, 113, 4932.
[77] V.R. Stamenkovic, B.S. Moon, K.J.J. Mayrhofer, P.N. Ross and N.M. Markovic: J. Am. Chem. Soc, 2006, 128, 8813.
[78] V.R. Stamenkovic, B. Fowler, B.S. Mun, G.F. Wang, P.N. Ross, C.A. Lucas and N.M. Markovic: Science, 2008, 315, 493.
[79] J.B. Li, S.L. Zhu, Y. Li, E.E. Oguzie and F.H. Wang: J. Phys. Chem. C, 2008, 112, 8301.
[80] S. Wilke, V. Natoli and H. Cohen: J. Chem. Phys, 2000, 112, 9986.
[81] C.T. Au, J. Breza and M.W. Roberts: Chem. Phys. Lett, 1979, 66, 340.
[82] P.A. Redhead: Vacuum, 1962, 12, 203.
[83] H. Yang and J.L. Whitten: Surf. Sci, 1989, 223, 131.
[84] A. Perez, M.J. Vilkas, C.R. Cabrera and Y. Ishikawa: J. Phys. Chem. B, 2005, 109, 23571.
[85] T. Jacob and W.A. Goddard: ChemPhysChem, 2006, 7, 992.
[86] B.A. Sexton and A.E. Hughes: Surf. Sci, 1984, 140, 227.
[87] S. Wilke, V. Natoli and H. Cohen: J. Chem. Phys, 2000, 112, 9986.
[88] R. Brosseau, M.R. Brustein and T.H. Ellis: Surf. Sci, 1993, 294, 243.
[89] K.G. Lloyd, B.A. Banse and J.C. Hemminger: Phys. Rev. B, 1986, 33, 2858.
[90] C. Mariani and K. Horn: Surf. Sci, 1983, 126, 279.
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