DocumentCode :
1082612
Title :
Design of a Self-Flapping Microfluidic Oscillator and Diagnosis With Fluorescence Methods
Author :
Yang, Jing-Tang ; Chen, Chi-Ko ; Hu, I. Chen ; Lyu, Ping-Chiang
Author_Institution :
Nat. Tsing Hua Univ., Hsinchu
Volume :
16
Issue :
4
fYear :
2007
Firstpage :
826
Lastpage :
835
Abstract :
To measure a microflow rate and to accelerate the reaction between proteins by an unbalanced impingement of feedback flow, we have proposed and verified the design of a self- flapping microfluidic oscillator. Three specific features - the large aspect ratio of the micronozzle, the structure of the sudden- expansion inlet, and the asymmetric feedback channels - are developed to induce stable oscillation. The large aspect ratio of the micronozzle diminishes the influence of viscous force, and the inlet structure triggers flow instability. The conjunction of both factors promotes the occurrence of the Coanda effect, and initiates oscillation. The asymmetric feedback channels produce an unbalanced impingement of the inlet flow, thus reinforcing the initial oscillation to become stably periodic. Beyond the function of a microflowmeter, the oscillatory characteristics are applicable to accelerate the biochemical reaction between two fluorescent proteins, B-phycoerythrin and an allophycocyanin alpha subunit. With fluorescence induced with a laser, we detected the proteins at a specific wavelength to define the region of interaction caused by the oscillatory motions, which clearly enhances the rate of reaction of these fluids. To focus on the reaction phenomenon of twin fluids, we demonstrated biotin-streptavidin binding that was detected via a fluorescence-resonance-energy-transfer (FRET) pair of fluorescent proteins. The FRET signal demonstrated conclusively that the biochemical reaction was promoted through the oscillatory function.
Keywords :
biochemistry; flowmeters; fluid oscillations; fluorescence; microfluidics; nozzles; proteins; B-phycoerythrin protein; Coanda effect; allophycocyanin alpha protein; asymmetric feedback channels; biochemical reaction; biotin-streptavidin binding; flow instability; fluorescence methods; fluorescence-resonance-energy-transfer; fluorescent proteins; microflow rate; microflowmeter; micronozzle; oscillatory characteristics; reaction phenomenon; self-flapping microfluidic oscillator; sudden-expansion inlet; twin fluids; unbalanced impingement; Acceleration; Fluid flow measurement; Fluorescence; Force measurement; Laser feedback; Mechanical engineering; Microfluidics; Oscillators; Proteins; Thermal force; $mu$ -laser-induced-fluorescence (LIF); Fluorescence resonance energy transfer (FRET); microflowmeter; microfluidic oscillator;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2007.899338
Filename :
4285640
Link To Document :
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