CONDENSED MATTER: STRUCTURAL, MECHANICAL, AND THERMAL PROPERTIES |
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Structure and dynamics of ordered water in a thick nanofilm on ionic surfaces |
Ren Xiu-Ping (任秀平)a b, Zhou Bo (周波)a b, Li Lan-Ting (李兰婷)a b, Wang Chun-Lei (王春雷)a |
a Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; b University of Chinese Academy of Sciences, Beijing 100049, China |
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Abstract Structure and dynamics of water in thick film on an ionic surface are studied by molecular dynamic simulations. We find that there is a dense monolayer of water molecules in the vicinity of the surface. Water molecules within this layer not only show an upright hydrogen-down orientation, but also an upright hydrogen-up orientation. Thus, water molecules in this layer can form hydrogen bonds with water molecules in the next layer. Therefore, the two-dimensional hydrogen bond network of the first layer is disrupted, mainly due to the O atoms in this layer, which are affected by the next layer and are unstable. Moreover, these water molecules exhibit delayed dynamic behavior with relatively long residence time compared with those bulk-like molecules in the other layers. Our study should be helpful to further understand the influence of water film thickness on the interfacial water at the solid-liquid interface.
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Received: 23 May 2012
Revised: 20 August 2012
Accepted manuscript online:
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PACS:
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68.03.Hj
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(Liquid surface structure: measurements and simulations)
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68.08.-p
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(Liquid-solid interfaces)
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68.55.jd
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(Thickness)
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Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 10975175, 90923002, and 21073222), the Postdoctoral Science Foundation of China (Grant No. 20100480645), the Postdoctoral Scientific Program of Shanghai, China (Grant No. 11R21418100), and Chinese Academy of Sciences (Grant No. KJCX2-EW-N03). |
Corresponding Authors:
Wang Chun-Lei
E-mail: wangchunlei@sinap.ac.cn
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Cite this article:
Ren Xiu-Ping (任秀平), Zhou Bo (周波), Li Lan-Ting (李兰婷), Wang Chun-Lei (王春雷) Structure and dynamics of ordered water in a thick nanofilm on ionic surfaces 2013 Chin. Phys. B 22 016801
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[1] |
Cheng L, Fenter P, Nagy K L, Schlegel M L and Sturchio N C 2001 Phys. Rev. Lett. 87 156103
|
[2] |
Allara D L 2005 Nature 437 638
|
[3] |
Zhou X Y and Lu H J 2007 Chin. Phys. 16 335
|
[4] |
Bonn D, Eggers J, Indekeu J, Meunier J and Rolley E 2009 Rev. Mod. Phys. 81 739
|
[5] |
Wang C, Zhou B, Tu Y, Duan M, Xiu P, Li J and Fang H 2012 Sci. Rep. 2 358
|
[6] |
Zhou B, Xiu P, Wang C L and Fang H P 2012 Chin. Phys. B 21 26801
|
[7] |
de Leeuw N H and Parker S C 1998 Phys. Rev. B 58 13901
|
[8] |
Ewing G E 2006 Chem. Rev. 106 1511
|
[9] |
Verdaguer A, Sacha G M, Bluhm H and Salmeron M 2006 Chem. Rev. 106 1478
|
[10] |
Wang J W, Kalinichev A G and Kirkpatrick R J 2006 Geochim. Cosmochim. Acta 70 562
|
[11] |
Janecek J and Netz R R 2007 Langmuir 23 8417
|
[12] |
Argyris D, Tummala N R, Striolo A and Cole D R 2008 J. Phys. Chem. C 112 13587
|
[13] |
Wang C L, Lu H J, Wang Z G, Xiu P, Zhou B, Zuo G H, Wan R Z, Hu J Z and Fang H P 2009 Phys. Rev. Lett. 103 137801
|
[14] |
Yan D, Lu J, Wei M, Ma J, Evans D G and Duan X 2009 Phys. Chem. Chem. Phys. 11 9200
|
[15] |
Rotenberg B, Patel A J and Chandler D 2011 J. Am. Chem. Soc. 133 20521
|
[16] |
Wang C L, Zhou B, Xiu P and Fang H P 2011 J. Phys .Chem. C 115 3018
|
[17] |
Hu J, Xiao X D, Ogletree D F and Salmeron M 1995 Science 268 267
|
[18] |
Odelius M, Bernasconi M and Parrinello M 1997 Phys. Rev. Lett. 78 2855
|
[19] |
Xu L, Lio A, Hu J, Ogletree D F and Salmeron M 1998 J. Phys. Chem. B 102 540
|
[20] |
Zhu Y X and Granick S 2001 Phys. Rev. Lett. 87 096104
|
[21] |
Park S H and Sposito G 2002 Phys. Rev. Lett. 89 85501
|
[22] |
Spagnoli C, Loos K, Ulman A and Cowman M K 2003 J. Am. Chem. Soc. 125 7124
|
[23] |
Park C, Fenter P A, Nagy K L and Sturchio N C 2006 Phys. Rev. Lett. 97 016101
|
[24] |
Meleshyn A 2008 J. Phys. Chem. C 112 14495
|
[25] |
Wang C L, Li Z X, Li J Y, Xiu P, Hu J and Fang H P 2008 Chin. Phys. B 17 2646
|
[26] |
Fukuma T 2010 Sci. Technol. Adv. Mater. 11 033003
|
[27] |
Xu K, Cao P G and Heath J R 2010 Science 329 1188
|
[28] |
James M, Darwish T A, Ciampi S, Sylvester S O, Zhang Z, Ng A, Gooding J J and Hanley T L 2011 Soft Matter 7 5309
|
[29] |
Berendsen H J C, Grigera J R and Straatsma T P 1987 J. Phys. Chem. 91 6269
|
[30] |
Miyamoto S and Kollman P A 1992 J. Comput. Chem. 13 952
|
[31] |
Hess B, Kutzner C, van der Spoel D and Lindahl E 2008 J. Chem. Theory Comput. 4 435
|
[32] |
Essmann U, Perera L, Berkowitz M L, Darden T, Lee H and Pedersen L G 1995 J. Chem. Phys. 103 8577
|
[33] |
Bussi G, Donadio D and Parrinello M 2007 J. Chem. Phys. 126 014101
|
[34] |
Zhou B, Wang C L, Xiu P and Fang H P 2012 Commun. Theor. Phys. 57 308
|
[35] |
van der Spoel D, van Maaren P J, Larsson P and Timneanu N 2006 J. Phys. Chem. B 110 4393
|
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