Published October 22, 1999 | Version v1
Miscellaneous

Extending molecular theory to steady-state diffusing systems

Description

Predicting the properties of nonequilibrium systems from molecular simulations is a growing area of interest. One important class of problems involves steady state diffusion. To study these cases, a grand canonical molecular dynamics approach has been developed by Heffelfinger and van Swol[J. Chem. Phys., 101, 5274 (1994)]. With this method, the flux of particles, the chemical potential gradients, and density gradients can all be measured in the simulation. In this paper, we present a complementary approach that couples a nonlocal density functional theory (DFT) with a transport equation describing steady-state flux of the particles. We compare transport-DFT predictions to GCMD results for a variety of ideal (color diffusion), and nonideal (uphill diffusion and convective transport) systems. In all cases excellent agreement between transport-DFT and GCMD calculations is obtained with diffusion coefficients that are invariant with respect to density and external fields

Availability note (English)

Available from OSTI as DE00014005

Additional details

Publishing Information

Imprint Pagination
10 p.

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
34001530
Subject category
S37: INORGANIC, ORGANIC, PHYSICAL AND ANALYTICAL CHEMISTRY;
Resource subtype / Literary indicator
Non-conventional Literature
Descriptors DEI
COMPUTERIZED SIMULATION; DENSITY; DIFFUSION; MOLECULAR DYNAMICS METHOD; STEADY-STATE CONDITIONS
Descriptors DEC
CALCULATION METHODS; PHYSICAL PROPERTIES; SIMULATION

Optional Information

Contract/Grant/Project number
AC04-94AL85000
Notes
Submitted to Journal of Chemical Physics; ISSN 0021-9606; JCPSA6
Funding organization
US Department of Energy (United States)
Secondary number(s)
SAND--99-2735J