Journal of Chemical Physics
The Journal of Chemical Physics
   
 
 
 
Previous Article
Substitution and chemical environment effects on the absorption spectrum of indigo
The UV/visible spectra of a series of indigo derivatives have been evaluated by using ab initio methods. The combination of the Polarizable continuum model for estimating bulk solvent effects with the...
Next Article
Dipole and quadrupole moments of molecules in crystals: A novel approach based on integration over Hirshfeld surfaces
Elegant expressions are derived for the computation of dipole and quadrupole moments of molecules using the electrostatic potential and electric field evaluated on an oriented molecular surface. These...

Mesoscale modeling of complex binary fluid mixtures: Towards an atomistic foundation of effective potentials

J. Chem. Phys. 124, 074105 (2006); doi:10.1063/1.2161207

Published 21 February 2006

You are not logged in to this journal. Log in

Jörg R. Silbermann, Sabine H. L. Klapp, and Martin Schoen
Stranski-Laboratorium für Physikalische und Theoretische Chemie, Sekr. C 7, Fakultät für Mathematik und Naturwissenschaften, Technische Universität Berlin, Straße des 17, Juni 115, D-10623 Berlin, Germany

Naresh Chennamsetty, Henry Bock, and Keith E. Gubbins
Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, North Carolina 27695
This paper is devoted to equilibrium molecular-dynamics (MD) simulations of a fully atomistic model of binary mixtures of water (component 1) and ethanol (component 2). We investigate ways to extract from these simulations effective, pairwise additive potentials suitable to describe the interactions between coarse-grained molecules (i.e., beads) in corresponding mesoscale dissipative particle-dynamics simulations. The fully atomistic model employed in MD simulations is mapped onto an implicit water model, where the internal degrees of freedom of ethanol and all the degrees of freedom of water are integrated out. This gives us an effective one-component system consisting only of ethanol beads. The effective interaction potential between a pair of ethanol beads, Phi(R), is approximated at three levels of sophistication. At the lowest one, we approximate Phi(R) by the potential of mean force between the centers of mass of two ethanol beads calculated in the fully atomistic MD simulations; at the second level, we take Phi(R) to be the potential linked to total and direct correlation functions in the hypernetted-chain closure of the Ornstein-Zernike equation. At the third level we approximate Phi(R) numerically by improving it iteratively through the Boltzmann inversion scheme. Our results indicate that the level-one approach works only at the lowest (8 wt %) concentration; the level-two approach works only up to intermediate ethanol concentrations (ca. 50 wt %). Only the Boltzmann inversion scheme works for all, up to the highest concentration considered (70 wt %). ©2006 American Institute of Physics
History: Received 15 August 2005; accepted 28 November 2005; published 21 February 2006
Permalink: http://link.aip.org/link/?JCPSA6/124/074105/1
BUY THIS ARTICLE   (US$28)
Download HTML Download Sectioned HTML Download PDF (175 kB) View Cart

KEYWORDS and PACS

Keywords
PACS
  • 61.20.Ja
    Computer simulation of liquid structure
  • YEAR: 2006

RELATED DATABASES


To view database links for this article,
you need to log in.
To view database links for this article,
you need to log in.

PUBLICATION DATA

ISSN:
0021-9606 (print)   1089-7690 (online)
Publisher:
AIP is a member of CrossRef AIP

REFERENCES (29)

For access to fully linked references, you need to log in. For access to fully linked references, you need to Log in.
  1. J. C. Shelley and M. Y. Shelley, Curr. Opin. Colloid Interface Sci. 5, 101 (2000).
  2. P. J. Hoogerbrugge and J. M. V. A. Koelman, Europhys. Lett. 19, 155 (1992).
  3. J. M. V. A. Koelman and P. J. Hoogerbrugge, Europhys. Lett. 21, 363 (1993).
  4. P. Espanõl and P. Warren, Europhys. Lett. 30, 191 (1995).
  5. S. H. L. Klapp, D. J. Diestler, and M. Schoen, J. Phys.: Condens. Matter 16, 7331 (2004).
  6. C. N. Likos, Phys. Rep. 348, 267 (2001).
  7. C. N. Likos, N. Hoffmann, H. Löwen, and A. A. Louis, J. Phys.: Condens. Matter 14, 7681 (2002).
  8. M. Dijkstra, R. van Roij, and R. Evans, Phys. Rev. E 59, 5744 (1999).
  9. N. Chennamsetty, H. Bock, and K. E. Gubbins, Mol. Phys. 103, 3185 (2005).
  10. R. L. Henderson, Phys. Lett. 49A, 197 (1974).
  11. C. G. Gray and K. E. Gubbins, Theory of Molecular Fluids: Fundamentals (Clarendon, Oxford, 1984), Vol. 1, p. 178.
  12. J. P. Hansen and I. R. McDonald, Theory of Simple Liquids, 2nd ed. (Academic, London, 1986), p. 179.
  13. A. A. Louis, P. G. Bolhuis, J. P. Hansen, and E. J. Meijer, Phys. Rev. Lett. 85, 2522 (2000).
  14. A. A. Louis, P. G. Bolhuis, and J. P. Hansen, Phys. Rev. E 62, 7961 (2000).
  15. P. G. Bolhuis and A. A. Louis, Macromolecules 35, 1860 (2002).
  16. C. N. Likos, M. Schmidt, H. Löwen, M. Ballauff, D. Pötschke, and P. Lindner, Macromolecules 34, 2914 (2001).
  17. C. N. Likos, S. Rosenfeldt, N. Dingenouts, M. Ballauff, P. Lindner, N. Werner, and F. Vögtle, J. Chem. Phys. 117, 1869 (2002).
  18. A. K. Soper, Chem. Phys. 202, 295 (1996).
  19. D. Reith, M. Pütz, and F. Müller-Plathe, J. Comput. Chem. 24, 1624 (2003).
  20. A. P. Lyubartsev, M. Karttunen, I. Vattulainen, and A. Laaksonen, Soft Mater. 1, 121 (2003).
  21. S. Melchionna, G. Ciccotti, and B. L. Holian, Mol. Phys. 78, 533 (1993).
  22. T. R. Forester and W. Smith, DLPOLY v.2.14, Daresbury Laboratory, Daresbury, 2003.
  23. J. P. Ryckaert, G. Ciccotti, and H. J. C. Berendsen, J. Comput. Phys. 23, 327 (1977).
  24. W. L. Jorgensen, D. S. Maxwell, and J. Tirado Rives, J. Am. Chem. Soc. 118, 11225 (1996).
  25. H. J. C. Berendsen, J. R. Grigera, and T. P. Straatsma, J. Phys. Chem. 91, 6269 (1987).
  26. U. Essmann, L. Perera, M. L. Berkowitz, T. Darden, H. Lee, and L. G. Pedersen, J. Chem. Phys. 103, 8577 (1995).
  27. E. J. W. Wensink, A. C. Hoffmann, P. J. van Maaren, and D. van der Spoel, J. Chem. Phys. 119, 7308 (2003).
  28. I. Vattulainen, M. Karttunen, G. Besold, and J. M. Polson, J. Chem. Phys. 116, 3967 (2002).
  29. A. A. Louis, J. Phys.: Condens. Matter 14, 9187 (2002).

CITING ARTICLES

For access to citing articles, you need to log in.
For access to citing articles, you need to Log in.