Distribution of Binding Energies of a Water Molecule in the Water Liquid-Vapor Interface

被引:14
作者
Chempath, Shaji [2 ]
Pratt, Lawrence R. [1 ]
机构
[1] Tulane Univ, Dept Chem & Biomol Engn, New Orleans, LA 70118 USA
[2] Los Alamos Natl Lab, Div Theoret, Los Alamos, NM 87545 USA
关键词
DYNAMICS;
D O I
10.1021/jp806858z
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
Distributions of binding energies of a water molecule in the water liquid-vapor interface are obtained on the basis of molecular simulation with the SPC/E model of water. These binding energies together with the observed interfacial density profile are used to test a minimally conditioned Gaussian quasi-chemical statistical thermodynamic theory. Binding energy distributions for water molecules in that interfacial region clearly exhibit a composite structure. A minimally conditioned Gaussian quasi-chemical model that is accurate for the free energy of bulk liquid water breaks down for water molecules in the liquid-vapor interfacial region. This breakdown is associated with the fact that this minimally conditioned Gaussian model would be inaccurate for the statistical thermodynamics of a dilute gas. Aggressive conditioning greatly improves the performance of that Gaussian quasi-chemical model. The analogy between the Gaussian quasi-chemical model and dielectric models of hydration free energies suggests that naive dielectric models without the conditioning features of quasi-chemical theory will be unreliable for these interfacial problems. Multi-Gaussian models that address the composite nature of the binding energy distributions observed in the interfacial region might provide a mechanism for correcting dielectric models for practical applications.
引用
收藏
页码:4147 / 4151
页数:5
相关论文
共 16 条
[1]   Non-van der waals treatment of the hydrophobic solubilities of CF4 [J].
Asthagiri, D. ;
Ashbaugh, H. S. ;
Piryatinski, A. ;
Paulaitis, M. E. ;
Pratt, L. R. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2007, 129 (33) :10133-10140
[2]   Role of attractive methane-water interactions in the potential of mean force between methane molecules in water [J].
Asthagiri, D. ;
Merchant, Safir ;
Pratt, Lawrence R. .
JOURNAL OF CHEMICAL PHYSICS, 2008, 128 (24)
[3]  
Beck TL, 2006, The Potential Distribution Theorem and Models of Molecular Solutions
[4]   Unraveling water's entropic mysteries: A unified view of nonpolar, polar, and ionic hydration [J].
Ben-Amotz, Dor ;
Underwood, Robin .
ACCOUNTS OF CHEMICAL RESEARCH, 2008, 41 (08) :957-967
[5]  
CHEMPATH S, 2008, QUESICHEMICAL THEORY
[6]   Simulated surface tensions of common water models [J].
Chen, Feng ;
Smith, Paul E. .
JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (22)
[7]   Object-oriented programming paradigms for molecular modeling [J].
Gupta, A ;
Chempath, S ;
Sanborn, MJ ;
Clark, LA ;
Snurr, RQ .
MOLECULAR SIMULATION, 2003, 29 (01) :29-46
[8]   Multistate Gaussian model for electrostatic solvation free energies [J].
Hummer, G ;
Pratt, LR ;
Garcia, AE .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1997, 119 (36) :8523-8527
[9]   STRUCTURE AND HYDROGEN-BOND DYNAMICS OF WATER-DIMETHYL SULFOXIDE MIXTURES BY COMPUTER-SIMULATIONS [J].
LUZAR, A ;
CHANDLER, D .
JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (10) :8160-8173
[10]   Theories of concentrated electrolytes [J].
Onsager, L .
CHEMICAL REVIEWS, 1933, 13 (01) :73-89