Numerical analysis of finite Debye-length effects in induced-charge electro-osmosis

Misha Marie Gregersen, Mathias Bækbo Andersen, Gaurav Soni, Carl Meinhart, and Henrik Bruus
Phys. Rev. E 79, 066316 – Published 26 June 2009

Abstract

For a microchamber filled with a binary electrolyte and containing a flat unbiased center electrode at one wall, we employ three numerical models to study the strength of the resulting induced-charge electro-osmotic (ICEO) flow rolls: (i) a full nonlinear continuum model resolving the double layer, (ii) a linear slip-velocity model not resolving the double layer and without tangential charge transport inside this layer, and (iii) a nonlinear slip-velocity model extending the linear model by including the tangential charge transport inside the double layer. We show that, compared to the full model, the slip-velocity models significantly overestimate the ICEO flow. This provides a partial explanation of the quantitative discrepancy between observed and calculated ICEO velocities reported in the literature. The discrepancy increases significantly for increasing Debye length relative to the electrode size, i.e., for nanofluidic systems. However, even for electrode dimensions in the micrometer range, the discrepancies in velocity due to the finite Debye length can be more than 10% for an electrode of zero height and more than 100% for electrode heights comparable to the Debye length.

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  • Received 23 February 2009

DOI:https://doi.org/10.1103/PhysRevE.79.066316

©2009 American Physical Society

Authors & Affiliations

Misha Marie Gregersen1, Mathias Bækbo Andersen1, Gaurav Soni2, Carl Meinhart2, and Henrik Bruus1

  • 1Department of Micro- and Nanotechnology, Technical University of Denmark, DTU Nanotech, Building 345 East, DK-2800 Kongens Lyngby, Denmark
  • 2Department of Mechanical Engineering, University of California, Engineering II Building, Santa Barbara, California 93106, USA

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Vol. 79, Iss. 6 — June 2009

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