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The "macromolecular Tourist": Universal Temperature Dependence of Thermal Diffusion in Aqueous Colloidal Suspensions

Overview
Publisher EDP Sciences
Specialty Biophysics
Date 2006 Feb 1
PMID 16446985
Citations 30
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Abstract

By performing measurements on a large class of macromolecular and colloidal systems, we show that thermophoresis (particle drift induced by thermal gradients) in aqueous solvents displays a distinctive universal dependence on temperature. For systems of particles interacting via temperature-independent forces, this behavior is strictly related to the solvent thermal expansivity, while an additional, T-independent term is needed to account for the behavior of "thermophilic" (migrating to the warmth) particles. The former relation between thermophoresis and thermal expansion may be exploited to envisage other fruitful studies of colloidal diffusion in inhomogeneous fluids.

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