On the efficiency of electrokinetic pumping of liquids through nanoscale channels

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Electrokinetic pumps are a novel microfluidic technology being pursued for microscale high performance liquid chromatography (HPLC) and heat transfer applications. These pumps are typically reported to have efficiencies of only a few percent or less. We present an analytical and numerical investigation of the thermodynamic efficiency of electrokinetic pumping, solving the hydrodynamic and fully nonlinear Poisson-Boltzmann equations over a wide range of various dimensionless parameters. The numerical results show that efficiency as high as 15% may be attainable, when using uniform submicron-depth microchannels in substrates with moderately high zeta potentials, as well as using electrolytes with low specific conductivity (we identify practical candidate electrolytes). Simple design rules are given for pump dimensions and working electrolyte, based on dimensionless parameters such as the ratio of Debye layer thickness to channel depth, normalized zeta potential, and operating pressure. We compare our results with existing experimental data and provide practical design examples. (C) 2003 Elsevier B.V. All rights reserved.
Publisher
ELSEVIER SCIENCE SA
Issue Date
2004-03
Language
English
Article Type
Article
Keywords

COMPLEX CAPILLARY SYSTEMS; ISOTACHOPHORETIC DETERMINATION; COMPUTER-SIMULATION; IONIC MOBILITIES; FABRICATION; FLOW; PKA; POTENTIALS; CONSTANTS; TRANSPORT

Citation

SENSORS AND ACTUATORS B-CHEMICAL, v.98, no.2-3, pp.368 - 377

ISSN
0925-4005
DOI
10.1016/j.snb.2003.10.027
URI
http://hdl.handle.net/10203/20655
Appears in Collection
ME-Journal Papers(저널논문)
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