Literature DB >> 15332972

Dynamical density functional theory and its application to spinodal decomposition.

A J Archer1, R Evans.   

Abstract

We present an alternative derivation of the dynamical density functional theory for the one-body density profile of a classical fluid developed by Marconi and Tarazona [J. Chem. Phys. 110, 8032 (1999)]. Our derivation elucidates further some of the physical assumptions inherent in the theory and shows that it is not restricted to fluids composed of particles interacting solely via pair potentials; rather it applies to general, multibody interactions. The starting point for our derivation is the Smoluchowski equation and the theory is therefore one for Brownian particles and as such is applicable to colloidal fluids. In the second part of this paper we use the dynamical density functional theory to derive a theory for spinodal decomposition that is applicable at both early and intermediate times. For early stages of spinodal decomposition our nonlinear theory is equivalent to the (generalized) linear Cahn-Hilliard theory, but for later times it incorporates coupling between different Fourier components of the density fluctuations (modes) and therefore goes beyond Cahn-Hilliard theory. We describe the results of calculations for a model (Yukawa) fluid which show that the coupling leads to the growth of a second maximum in the density fluctuations, at a wave number larger than that of the main peak. (c) 2004 American Institute of Physics

Year:  2004        PMID: 15332972     DOI: 10.1063/1.1778374

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   3.488


  11 in total

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7.  Rheology of colloidal suspensions in confined flow: Treatment of hydrodynamic interactions in particle-based simulations inspired by dynamical density functional theory.

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8.  Superadiabatic Forces via the Acceleration Gradient in Quantum Many-Body Dynamics.

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9.  Particle-resolved topological defects of smectic colloidal liquid crystals in extreme confinement.

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10.  Effects of social distancing and isolation on epidemic spreading modeled via dynamical density functional theory.

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Journal:  Nat Commun       Date:  2020-11-04       Impact factor: 14.919

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