Fluid flow induced by nonuniform ac electric fields in electrolytes on microelectrodes. III. Observation of streamlines and numerical simulation

N. G. Green, A. Ramos, A. González, H. Morgan, and A. Castellanos
Phys. Rev. E 66, 026305 – Published 19 August 2002
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Abstract

The application of a nonuniform ac electric field to an electrolyte using coplanar microelectrodes results in steady fluid flow. The flow has its origin in the interaction of the tangential component of the nonuniform field with the induced charge in the electrical double layer on the electrode surfaces. Termed ac electro-osmosis, the flow has been studied experimentally and theoretically using linear analysis. This paper presents experimental observations of the fluid flow profile obtained by superimposing images of particle movement in a plane normal to the electrode surface. These experimental streamlines demonstrate that the fluid flow is driven at the surface of the electrodes. Experimental measurements of the impedance of the electrical double layer on the electrodes are also presented. The potential drop across the double layer at the surface of the electrodes is calculated numerically using a linear double layer model, and also using the impedance of the double layer obtained from experimental data. The ac electro-osmotic flow at the surface of the electrodes is then calculated using the Helmholtz-Smoluchowski formula. The bulk fluid flow driven by this surface velocity is numerically calculated as a function of frequency and good agreement is found between the numerical and experimental streamlines.

  • Received 28 January 2002

DOI:https://doi.org/10.1103/PhysRevE.66.026305

©2002 American Physical Society

Authors & Affiliations

N. G. Green1,*, A. Ramos2, A. González2,3, H. Morgan1, and A. Castellanos2

  • 1Bioelectronics Research Centre, Department of Electronics and Electrical Engineering, University of Glasgow, Rankine Building, Oakfield Avenue, Glasgow G12 8LT, Scotland, United Kingdom
  • 2Departamento de Electrónica y Electromagnetismo, Facultad de Física, Universidad de Sevilla, Reina Mercedes s/n, 41012 Sevilla, Spain
  • 3Departamento de Física Aplicada III, ESI Universidad de Sevilla, Camino de los Descubrimientos s/n, 41092 Sevilla, Spain

  • *Corresponding author. Email address: n.green@elec.gla.ac.uk

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Vol. 66, Iss. 2 — August 2002

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