DocumentCode :
966726
Title :
Floating-Disk Parylene Microvalves for Self-Pressure-Regulating Flow Controls
Author :
Chen, Po-Jui ; Rodger, Damien C. ; Humayun, Mark S. ; Tai, Yu-Chong
Author_Institution :
Dept. of Electr. Eng., California Inst. of Technol., Pasadena, CA
Volume :
17
Issue :
6
fYear :
2008
Firstpage :
1352
Lastpage :
1361
Abstract :
This paper presents the first parylene-based floating-disk microvalve with self-pressure-regulating characteristics for various microfluidic applications. By incorporating a free-floating disk diaphragm with no anchoring/tethering structures to constrain its movement, the microvalve realizes configurable pressure-based flow-shunting functions in a stand-alone fashion. Its passive operation eliminates the need for power sources or the external actuation of the device. A multilayer polymer surface-micromachining technology is utilized for device fabrication by exploiting parylene C (poly-chloro-p-xylylene) as the biocompatible structural material for high mechanical compliance as compared with other conventional thin-film materials. Experimental results successfully demonstrate that the in-channel microvalves control water flows in the following two different shunt designs: 1) a nearly ideal regular check valve with zero forward-cracking pressure, zero reverse leakage, and 1.25 times1013 - 2.09 times 1013 Nldrs/m5 (0.03-0.05 psildrmin/muL, 1.55-2.59 mmHgldrmin/muL) of fluidic resistance; and 2) a pressure-bandpass check valve with 0-100 mmHg and 0-10 muL/min of pressure and flow rate regulation ranges, respectively, as well as 4.88 ×1013 Nldrs/m5 (0.12 psi middotmin/muL, 6.08 mmHg middotmin/muL) of fluidic resistance in the forward conductive region. Such a biocompatible and implantable microvalve has the great potential of being integrated in microfluidic systems to facilitate effective microflow control for lab-on-a-chip and biomedical applications. [2008-0055].
Keywords :
flow control; microchannel flow; microfluidics; micromachining; microvalves; biocompatible structural material; floating-disk parylene microvalves; fluidic resistance; forward-cracking pressure; free-floating disk diaphragm; microfluidic; multilayer polymer surface-micromachining technology; pressure-bandpass check valve; pressure-based flow-shunting functions; self-pressure-regulating flow controls; zero reverse leakage; Flow control; fluidics; mechanical engineering; microelectromechanical devices; micromachining; valves;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2008.2004947
Filename :
4660283
Link To Document :
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