High-throughput micromixers based on acoustic streaming induced by surface acoustic wave
Author(s) -
Trung-Dung Luong,
Vinh-Nguyen Phan,
NamTrung Nguyen
Publication year - 2010
Publication title -
microfluidics and nanofluidics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.524
H-Index - 87
eISSN - 1613-4990
pISSN - 1613-4982
DOI - 10.1007/s10404-010-0694-0
Subject(s) - micromixer , microfluidics , surface acoustic wave , mixing (physics) , laminar flow , fabrication , acoustic streaming , materials science , optoelectronics , soft lithography , reactive ion etching , voltage , substrate (aquarium) , micromixing , nanotechnology , throughput , acoustics , etching (microfabrication) , electrical engineering , ultrasonic sensor , computer science , layer (electronics) , mechanics , telecommunications , physics , alternative medicine , oceanography , pathology , engineering , quantum mechanics , medicine , geology , wireless
Flow characteristics in microfluidic devices is naturally laminar due to the small channel dimensions. Mixing based on molecular diffusion is generally poor. In this article, we report the fabrication and characterization of active surface-acousticwave-driven micromixers which exploit the acoustic streaming effect to significantly improve the mixing efficiency. A side-by-side flow of water and fluorescent dye solution was driven by a syringe pump. Surface wave with a frequency of 13 MHz was launched perpendicular to the flow. The wave was generated by two designs of interdigitated electrodes on LiNbO3 substrate: parallel electrodes and focusing electrodes. The mixing efficiency was observed to be proportional to the square of the applied voltage. Under the same applied voltage, the focusing type offers a better mixing efficiency. The fabrication of the micromixer is compatible to current technology such as soft lithography and deep reactive ion etching. Despite the high throughput and fast mixing time, the mixer design is simple and could be integrated into any microfluidic platform.Full Tex
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