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Updated: May 7, 2026

Characterization of Thermal Transport in One-dimensional Solid Materials
Published on: January 26, 2014
Computation of thermodynamic and transport properties to predict thermophoretic effects in an argon-krypton mixture
Nicholas A T Miller1, Peter J Daivis, Ian K Snook
1School of Applied Sciences, RMIT University, GPO Box 2476, Melbourne, Victoria 3001, Australia.
Abstract:
Thermophoresis is the movement of molecules caused by a temperature gradient. Here we report the results of a study of thermophoresis using non-equilibrium molecular dynamics simulations of a confined argon-krypton fluid subject to two different temperatures at thermostated walls. The resulting temperature profile between the walls is used along with the Soret coefficient to predict the concentration profile that develops across the channel. We obtain the Soret coefficient by calculating the mutual diffusion and thermal diffusion coefficients. We report an appropriate method for calculating the transport coefficients for binary systems, using the Green-Kubo integrals and radial distribution functions obtained from equilibrium molecular dynamics simulations of the bulk fluid. Our method has the unique advantage of separating the mutual diffusion and thermal diffusion coefficients, and calculating the sign and magnitude of their individual contributions to thermophoresis in binary mixtures.
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