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      Fast ac electro-osmotic micropumps with nonplanar electrodes

      , , ,
      Applied Physics Letters
      AIP Publishing

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          Microfluidics: Fluid physics at the nanoliter scale

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            Induced-Charge Electro-Osmosis

            We describe the general phenomenon of `induced-charge electro-osmosis' (ICEO) -- the nonlinear electro-osmotic slip that occurs when an applied field acts on the ionic charge it {\sl induces} around a polarizable surface. Motivated by a simple physical picture, we calculate ICEO flows around conducting cylinders in steady (DC), oscillatory (AC), and suddenly-applied electric fields. This picture, and these systems, represent perhaps the clearest example of nonlinear electrokinetic phenomena. We complement and verify this physically-motivated approach using a matched asymptotic expansion to the electrokinetic equations in the thin double-layer and low potential limits. ICEO slip velocities vary like \(u_s \propto E_0^2 L\), where \(E_0\) is the field strength and \(L\) is a geometric length scale, and are set up on a time scale \(\tau_c = \lambda_D L/D\), where \(\lambda_D\) is the screening length and \(D\) is the ionic diffusion constant. We propose and analyze ICEO microfluidic pumps and mixers that operate without moving parts under low applied potentials. Similar flows around metallic colloids with fixed total charge have been described in the Russian literature (largely unnoticed in the West). ICEO flows around conductors with fixed potential, on the other hand, have no colloidal analog and offer further possibilities for microfluidic applications.
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              Induced-charge Electrokinetic Phenomena: Theory and Microfluidic Applications

              , (2003)
              We give a general, physical description of ``induced-charge electro-osmosis'' (ICEO), the nonlinear electrokinetic slip at a polarizable surface, in the context of some new techniques for microfluidic pumping and mixing. ICEO generalizes ``AC electro-osmosis'' at micro-electrode arrays to various dielectric and conducting structures in weak DC or AC electric fields. The basic effect produces micro-vortices to enhance mixing in microfluidic devices, while various broken symmetries -- controlled potential, irregular shape, non-uniform surface properties, and field gradients -- can be exploited to produce streaming flows. Although we emphasize the qualitative picture of ICEO, we also briefly describe the mathematical theory (for thin double layers and weak fields) and apply it to a metal cylinder with a dielectric coating in a suddenly applied DC field.
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                Author and article information

                Journal
                Applied Physics Letters
                Appl. Phys. Lett.
                AIP Publishing
                0003-6951
                1077-3118
                October 02 2006
                October 02 2006
                : 89
                : 14
                : 143508
                Article
                10.1063/1.2358823
                c944a165-ec19-46ba-abb9-a0643415a2f0
                © 2006
                History

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