DocumentCode :
1240648
Title :
An Integrated 2-D Active Optical Fiber Manipulator With Microfluidic Channel for Optical Trapping and Manipulation
Author :
Lai, Chia-Wei ; Hsiung, Suz-Kai ; Chen, Yin-Quan ; Chiou, Arthur ; Lee, Gwo-Bin
Author_Institution :
Dept. of Eng. Sci., Nat. Cheng Kung Univ., Tainan
Volume :
17
Issue :
3
fYear :
2008
fDate :
6/1/2008 12:00:00 AM
Firstpage :
548
Lastpage :
557
Abstract :
We report a new two-axis active optical fiber manipulator for on-chip optical manipulation and detection in microfluidic environment. The system comprising of air chambers, fiber channels, controllable moving walls, and membrane structures were fabricated by using microelectromechanical systems technology. By adjusting air pressures to control the deflection of the pneumatic chambers placed orthogonal to and underneath the fiber channels, accurate alignment of a pair of approximately coaxial optical fibers, which was indicated by maximizing fiber-to-fiber optical-coupling measured in real time, has been achieved. A maximum displacement of a buried fiber as large as 13 mum at an applied pressure of 40 lb/in2 for one air chamber has been demonstrated. It was sufficient to accurately align two approximately coaxial optical fibers to maximize the optical coupling efficiency. The maximum coupling efficiency for two single-mode optical fibers facing each other at a distance of 200 mum was measured to be 4.1%. The following features have been successfully demonstrated with this system: 1) stable optical trapping and stretching of a single red blood cell; 2) stable optical trapping of multiple microparticles; 3) optically driven controlled motion of single and multiple microparticles; and 4) integration of a counterpropagating dual-beam trap with single-beam optical tweezers. In addition to optical trapping and manipulation, the proposed device is promising for applications requiring coaxial input/output fibers for in-line optical analysis. Furthermore, it can be easily integrated with other microfluidic devices such as microcapillary electrophoresis channels or microflow cytometers for DNA, protein, and cell analysis.
Keywords :
DNA; coaxial waveguides; microfluidics; optical couplers; optical fibres; proteins; radiation pressure; DNA; air chambers; air pressures; approximately coaxial optical fibers; buried fiber; cell analysis; controllable moving walls; counterpropagating dual-beam trap; deflection control; fiber channels; fiber-to-fiber optical-coupling; in-line optical analysis; integrated 2D active optical fiber manipulator; membrane structures; microcapillary electrophoresis channels; microelectromechanical systems; microflow cytometers; microfluidic channel; microfluidic devices; microparticles; on-chip optical detection; on-chip optical manipulation; optically driven controlled motion; pneumatic chambers; protein; red blood cell stretching; single-beam optical tweezers; single-mode optical fibers; stable optical trapping; Charge carrier processes; Coaxial components; Control systems; Integrated optics; Microfluidics; Optical control; Optical coupling; Optical detectors; Optical devices; Optical fibers; Microcoupler; microelectromechanical systems (MEMS); microfluidics chip; moving wall; optical detection; optical trappers;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2008.924271
Filename :
4538087
Link To Document :
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