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Microfluidic blood plasma separation via bulk electrohydrodynamic flows

journal contribution
posted on 2024-11-01, 10:14 authored by DR Arifin, Leslie YeoLeslie Yeo, James Friend
An effective mechanism for rapid and efficient microfluidic particle trapping and concentration is proposed without requiring any mechanically moving parts. When a voltage beyond the threshold atmospheric ionization value is applied on a sharp electrode tip mounted at an angle above a microfluidic liquid chamber, the bulk electrohydrodynamic air thrust that is generated results in interfacial shear and, hence, primary azimuthal liquid surface recirculation. This discharge driven vortex mechanism, in turn, causes a secondary bulk meridional liquid recirculation, which produces an inward radial force near the bottom of the chamber. Particles suspended in the liquid are then rapidly convected by the bulk recirculation toward the bottom, where the inward radial force causes them to spiral in a helical swirl-like fashion toward a stagnation point. In particular, we show that these flows, similar to Batchelor flows occurring in a cylindrical liquid column between a stationary and rotating disk, can be used for the separation of red blood cells from blood plasma in a miniaturized device

History

Journal

Biomicrofluidics

Volume

1

Number

014103

Issue

1

Start page

1

End page

13

Total pages

13

Publisher

American Institute of Physics

Place published

United States

Language

English

Copyright

(C) 2006 American Institute of Physics

Former Identifier

2006031400

Esploro creation date

2020-06-22

Fedora creation date

2012-05-04

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