Lubrication theory for electro-osmotic flow in a microfluidic channel of slowly varying cross-section and wall charge

被引:173
作者
Ghosal, S [1 ]
机构
[1] Northwestern Univ, Dept Mech Engn, Evanston, IL 60208 USA
关键词
D O I
10.1017/S0022112002007899
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Electro-osmotic flow is a convenient mechanism for transporting fluid in microfluidic devices. The flow is generated through the application of an external electric field that acts on the free charges that exist in a thin Debye layer at the channel walls. The charge on the wall is due to the particular chemistry of the solid-fluid interface and can vary along the channel either by design or because of various unavoidable inhomogeneities of the wall material or because of contamination of the wall by chemicals contained in the fluid stream. The channel cross-section could also vary in shape and area. The effect of such variability on the flow through microfluidic channels is of interest in the design of devices that use electro-osmotic flow. The problem of electro-osmotic flow in a straight microfluidic channel of arbitrary cross-sectional geometry and distribution of wall charge is solved in the lubrication approximation, which is justified when the characteristic length scales for axial variation of the wall charge and cross-section are both large compared to a characteristic width of the channel. It is thereby shown that the volume flux of fluid through such a microchannel is a linear function of the applied pressure drop and electric potential drop across it. the coefficients of which may be calculated explicitly in terms of the geometry and charge distribution on the wall. These coefficients characterize the 'fluidic resistance' of each segment of a microfluidic network in analogy to the electrical 'resistance' in a microelectronic circuit. A consequence of the axial variation in channel properties is the appearance of an induced pressure gradient and an associated secondary flow that leads to increased Taylor dispersion limiting the resolution of electrophoretic separations. The lubrication theory presented here offers a simple way of calculating the distortion of the flow profile in general geometries and could be useful in studies of dispersion induced by inhomogeneities in microfluidic channels.
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页码:103 / 128
页数:26
相关论文
共 39 条
[1]  
Abramowitz M., 1970, HDB MATH FUNCTIONS
[2]   ELCTROOSMOSIS ON INHOMOGENEOUSLY CHARGED SURFACES [J].
AJDARI, A .
PHYSICAL REVIEW LETTERS, 1995, 75 (04) :755-758
[3]   Generation of transverse fluid currents and forces by an electric field: Electro-osmosis on charge-modulated and undulated surfaces [J].
Ajdari, A .
PHYSICAL REVIEW E, 1996, 53 (05) :4996-5005
[4]   ELECTROOSMOSIS THROUGH PORES WITH NONUNIFORMLY CHARGED WALLS [J].
ANDERSON, JL ;
IDOL, WK .
CHEMICAL ENGINEERING COMMUNICATIONS, 1985, 38 (3-6) :93-106
[5]   Fabrication of topologically complex three-dimensional microfluidic systems in PDMS by rapid prototyping [J].
Anderson, JR ;
Chiu, DT ;
Jackman, RJ ;
Cherniavskaya, O ;
McDonald, JC ;
Wu, HK ;
Whitesides, SH ;
Whitesides, GM .
ANALYTICAL CHEMISTRY, 2000, 72 (14) :3158-3164
[6]  
ANDERSON JR, 2001, INTEGRATED COMPONENT
[7]   Control of flow direction in microfluidic devices with polyelectrolyte multilayers [J].
Barker, SLR ;
Ross, D ;
Tarlov, MJ ;
Gaitan, M ;
Locascio, LE .
ANALYTICAL CHEMISTRY, 2000, 72 (24) :5925-5929
[8]  
Batchelor David., 2000, An Introduction to Fluid Dynamics
[9]   TORQUE AND SWITCHING IN THE BACTERIAL FLAGELLAR MOTOR - AN ELECTROSTATIC MODEL [J].
BERRY, RM .
BIOPHYSICAL JOURNAL, 1993, 64 (04) :961-973
[10]   Dispersion sources for compact geometries on microchips [J].
Culbertson, CT ;
Jacobson, SC ;
Ramsey, JM .
ANALYTICAL CHEMISTRY, 1998, 70 (18) :3781-3789