DocumentCode :
3561253
Title :
Modeling and Demonstration of Thermally Stable High-Sensitivity Reproducible Acoustic Sensors
Author :
Akkaya, Onur Can ; Akkaya, O. ; Digonnet, Michel J F ; Kino, Gordon S. ; Solgaard, Olav
Author_Institution :
Center for Nanoscale Sci. & Eng., Stanford Univ., Stanford, CA, USA
Volume :
21
Issue :
6
fYear :
2012
Firstpage :
1347
Lastpage :
1356
Abstract :
A thermally stable high-sensitivity compact fiber acoustic sensor with a large bandwidth and a high dynamic range is introduced. The device is based on a photonic crystal fabricated on a compliant single-crystal silicon diaphragm, which is placed near the metalized end of a single-mode fiber to form a Fabry-Perot (FP) cavity. High reproducibility in operating wavelength (±1 nm) is enabled by assembling the sensor in a SiO2 chip using room-temperature sodium silicate oxide bonding. We demonstrate ten FP sensors with measured displacement sensitivities within ±0.6 dB. The response is shown to be polarization independent and thermally stable, with a thermal coefficient of the operating wavelength of 2.9pm/°C over more than 50 °C. An experimental sensor is shown to measure acoustic pressures down to a record low of 5.6 μPa/√Hz at 12.5 kHz with a flatband response greater than 8 kHz and a sensitivity extending down to at least 100 Hz. The dynamic range in pressure is greater than 100 dB. An electromechanical model of the device response is presented and shown to be in good agreement with experimental results.
Keywords :
Fabry-Perot interferometers; acoustic transducers; diaphragms; fibre optic sensors; photonic crystals; FP sensors; Fabry-Perot cavity; SiO2 chip; acoustic pressures; compact fiber acoustic sensor; compliant single-crystal silicon diaphragm; displacement sensitivities; electromechanical model; flatband response; frequency 12.5 kHz; metalized single-mode fiber end; operating wavelength; photonic crystal; room-temperature sodium silicate oxide bonding; thermal coefficient; thermally stable high-sensitivity reproducible acoustic sensors; Acoustic measurements; Acoustics; Bonding; Cavity resonators; Sensitivity; Thermal stability; Acoustic sensors; Fabry–Perot (FP) interferometer; photonic-crystal (PC) diaphragm; reproducibility; room-temperature oxide bonding; temperature stability;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
Conference_Location :
5/14/2012 12:00:00 AM
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2012.2196494
Filename :
6199944
Link To Document :
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