DocumentCode :
1314660
Title :
Fabrication and Characterization of Micromachined Active Probes With Polymer Membranes for Biomolecular Force Spectroscopy
Author :
Torun, Hamdi ; Sarangapani, Krishna K. ; Degertekin, F. Levent
Author_Institution :
George W. Woodruff Sch. of Mech. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Volume :
19
Issue :
5
fYear :
2010
Firstpage :
1021
Lastpage :
1028
Abstract :
A micromachined polymer membrane-based active probe has been developed for biomolecular force spectroscopy. The probe has integrated but significantly decoupled electrostatic actuation and optical interferometric force sensing capabilities. Devices have been fabricated on silicon substrates using Parylene as the membrane material. The electrostatic actuator integrated into the probe could provide > 1-μm displacement with a flat response of up to 30 kHz in fluid, a feature particularly useful in fast-pulling force spectroscopy experiments involving biomolecules. The probes were successfully employed to measure the unbinding forces between biotin and streptavidin, wherein the force noise level was <;10 pN with a 1-kHz bandwidth for an 8-N/m membrane with a 25-kHz resonance frequency in fluid. This is in agreement with the thermal noise data generated by a finite-element model that predicts further improvements with simple design changes.
Keywords :
atomic force microscopy; bioMEMS; biological techniques; electrostatic actuators; finite element analysis; force measurement; force sensors; membranes; micromachining; molecular biophysics; polymers; proteins; silicon; thermal noise; Parylene; Si; bandwidth 1 kHz; biomolecular force spectroscopy; biotin; decoupled electrostatic actuation; electrostatic actuator; fast-pulling force spectroscopy; finite-element model; force noise level; frequency 25 kHz; frequency 30 kHz; micromachined active probes; optical interferometric force sensing; polymer membranes; silicon substrates; streptavidin; thermal noise data; unbinding force measurement; Biomembranes; Electrodes; Electrostatic actuators; Force; Noise; Probes; Atomic force microscopy; fabrication; microelectromechanical systems; molecular biophysics;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2010.2067439
Filename :
5565395
Link To Document :
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