Issue 18, 2013

Thermophoretically induced flow field around a colloidal particle

Abstract

A colloidal particle suspended in a fluid solvent with a non-homogeneous temperature undergoes a thermophoretic force. This force may translate into a directed drift of the particle and a source-dipole-like flow field around it. Alternatively, if the colloid is fixed in space, the accompanying flow is long-ranged. In this work, we provide a first simulation study of the thermophoretic force-induced flow fields by a particle-based mesoscopic method. The simulation results are quantitatively consistent with theoretical predictions obtained by solving hydrodynamic equations. Based on these results, we propose a single-particle microfluidic pump without movable parts, in which the flow direction can be reversed. Furthermore, we quantify the long-range hydrodynamic attraction between two suspended particles near the boundary wall induced by the thermophoretic flow field.

Graphical abstract: Thermophoretically induced flow field around a colloidal particle

Article information

Article type
Paper
Submitted
27 Dec 2012
Accepted
21 Feb 2013
First published
25 Mar 2013
This article is Open Access
Creative Commons BY license

Soft Matter, 2013,9, 4661-4671

Thermophoretically induced flow field around a colloidal particle

M. Yang and M. Ripoll, Soft Matter, 2013, 9, 4661 DOI: 10.1039/C3SM27949A

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