DocumentCode :
3126434
Title :
On-chip microfluidic transport, mixing, and sensing using electrochemical principles
Author :
Satoh, Wataru ; Suzuki, Hiroaki
Author_Institution :
Graduate Sch. of Pure & Appl. Sci., Tsukuba Univ., Ibaraki, Japan
fYear :
2004
fDate :
24-27 Oct. 2004
Firstpage :
1577
Abstract :
An integrated micro analysis system was fabricated using a microfluidic transport system driven by electrowetting and an air-gap ammonia gas-sensing electrode. The basic element in the microfluidic system was an elongated gold working electrode and a protruding polydimethylsiloxane (PDMS) structure. The wettability of the gold electrode was changed by applying a negative potential with respect to an Ag/AgCl electrode, and a solution introduced from an inlet was mobilized through the gap between the working electrode and the protruding structure. Also, with a row of working electrodes with a narrow gap between them, the solution could be transported to any desired directions without using any valves. The principle was also used to realize a mixing mechanism. The simple structure and the principle of operation facilitated a higher level of integration. The open structure of the flow channel was advantageously used to form an air gap between a sample solution and the electrolyte solution for the ammonia electrode. Distinct changes in the indicator electrode potential were observed with 90% response time of 45 s (at 10 mM). A linear relationship was observed between the indicator potential and the logarithm of the concentration of ammonia. The lower detection limit was 50 μM.
Keywords :
ammonia; electrochemical sensors; gas sensors; gold compounds; microfluidics; microsensors; mixing; Ag-AgCl; Ag/AgCl electrode; air-gap ammonia gas-sensing electrode; electrochemical principles; electrowetting; elongated gold working electrode; indicator electrode potential; integrated micro analysis system; mixing; on-chip microfluidic transport; protruding polydimethylsiloxane structure; sensing; Air gaps; Electrodes; Fabrication; Fluidic microsystems; Glass; Gold; Microfluidics; Sputtering; System-on-a-chip; Valves;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensors, 2004. Proceedings of IEEE
Print_ISBN :
0-7803-8692-2
Type :
conf
DOI :
10.1109/ICSENS.2004.1426492
Filename :
1426492
Link To Document :
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