Self-consistent description of a metal-water interface by the Kohn-Sham density functional theory and the three-dimensional reference interaction site model

被引:595
作者
Kovalenko, A [1 ]
Hirata, F
机构
[1] Inst Mol Sci, Okazaki, Aichi 4448585, Japan
[2] Inst Condensed Matter Phys, UA-290011 Lvov, Ukraine
关键词
D O I
10.1063/1.478883
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We have developed a self-consistent description of an interface between a metal and a molecular liquid by combination of the density functional theory in the Kohn-Sham formulation (KS DFT) for the electronic structure, and the three-dimensional generalization of the reference interaction site model (3D RISM) for the classical site distribution profiles of liquid. The electron and classical subsystems are coupled in the mean field approximation. The procedure takes account of many-body effects of dense fluid on the metal-liquid interactions by averaging the pseudopotentials of liquid molecules over the classical distributions of the liquid. The proposed approach is substantially less time-consuming as compared to a Car-Parrinello-type simulation since it replaces molecular dynamics with the integral equation theory of molecular liquids. The calculation has been performed for pure water at normal conditions in contact with the (100) face cubic centered (fcc) surface of a metal roughly modeled after copper. The results are in good agreement with the Car-Parrinello simulation for the same metal model. The shift of the Fermi level due to the presence of water conforms with experiment. The electron distribution near an adsorbed water molecule is affected by dense water, and so the metal-water attraction follows the shapes of the metal effective electrostatic potential. For the metal model employed, it is strongest at the hollow site adsorption positions, and water molecules are adsorbed mainly at the hollow and bridge site positions rather than over metal atoms. Layering of water molecules near the metal surface is found. In the first hydration layer, adsorbed water molecules are oriented in parallel to the surface or tilted with hydrogens mainly outwards the metal. This orientation at the potential of zero charge agrees with experiment. (C) 1999 American Institute of Physics. [S0021-9606(99)51420-7].
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页码:10095 / 10112
页数:18
相关论文
共 121 条
[91]   COMPARISON OF THE STRUCTURE AND DYNAMICS OF WATER AT THE PT(111) AND PT(100) INTERFACES - MOLECULAR-DYNAMICS STUDY [J].
RAGHAVAN, K ;
FOSTER, K ;
BERKOWITZ, M .
CHEMICAL PHYSICS LETTERS, 1991, 177 (4-5) :426-432
[92]   SOLVATION OF NA+ AND CL- AT THE WATER PLATINUM (100) INTERFACE [J].
ROSE, DA ;
BENJAMIN, I .
JOURNAL OF CHEMICAL PHYSICS, 1991, 95 (09) :6856-6865
[93]   GENERALIZED RECURSIVE SOLUTIONS TO ORNSTEIN-ZERNIKE INTEGRAL-EQUATIONS [J].
ROSSKY, PJ ;
DALE, WDT .
JOURNAL OF CHEMICAL PHYSICS, 1980, 73 (05) :2457-2464
[94]   Analytical energy gradient for the reference interaction site model multiconfigurational self-consistent-field method: Application to 1,2-difluoroethylene in aqueous solution [J].
Sato, H ;
Hirata, F ;
Kato, S .
JOURNAL OF CHEMICAL PHYSICS, 1996, 105 (04) :1546-1551
[95]   NEW MODELS FOR THE STRUCTURE OF THE ELECTROCHEMICAL INTERFACE [J].
SCHMICKLER, W ;
HENDERSON, D .
PROGRESS IN SURFACE SCIENCE, 1986, 22 (04) :323-420
[96]   THE POTENTIAL OF ZERO CHARGE OF JELLIUM [J].
SCHMICKLER, W .
CHEMICAL PHYSICS LETTERS, 1983, 99 (02) :135-139
[97]   ON THE INTERACTION OF IONS WITH A PLATINUM METAL-SURFACE [J].
SEITZBEYWL, J ;
POXLEITNER, M ;
PROBST, MM ;
HEINZINGER, K .
INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 1992, 42 (05) :1141-1147
[98]   A MOLECULAR-DYNAMICS STUDY OF IONIC HYDRATION NEAR A PLATINUM SURFACE [J].
SEITZBEYWL, J ;
POXLEITNER, M ;
HEINZINGER, K .
ZEITSCHRIFT FUR NATURFORSCHUNG SECTION A-A JOURNAL OF PHYSICAL SCIENCES, 1991, 46 (10) :876-886
[99]   Modeling and structure of mercury-water interfaces [J].
Shelley, JC ;
Patey, GN ;
Berard, DR ;
Torrie, GM .
JOURNAL OF CHEMICAL PHYSICS, 1997, 107 (06) :2122-2141
[100]   FREE-ENERGY FUNCTIONS IN THE EXTENDED RISM APPROXIMATION [J].
SINGER, SJ ;
CHANDLER, D .
MOLECULAR PHYSICS, 1985, 55 (03) :621-625