Title :
The Resonating Star Gyroscope: A Novel Multiple-Shell Silicon Gyroscope With Sub-5 deg/hr Allan Deviation Bias Instability
Author :
Zaman, Mohammad Faisal ; Sharma, Ajit ; Ayazi, Farrokh
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA
fDate :
6/1/2009 12:00:00 AM
Abstract :
We report on the design, fabrication and characterization of a novel multiple-shell silicon vibratory microgyroscope. The resonating star gyroscope (RSG) is formed as a merged superposition of two square shells, yielding in-plane flexural modes that are utilized to sense rotation along the normal axis. The first prototypes of the single-shell RSG were implemented with 65 mum thick trench-refilled polysilicon structural material using the HARPSS process. These devices exhibited open-loop rate sensitivity of approximately 800 muV/deg/s. Despite high-aspect ratio sensing gaps, the device yielded poor sensitivity caused by low resonant-mode quality factors. To alleviate the Q TED losses caused by the inevitable formation of voids in trench-refilled structural material, the RSG was implemented in (111) single crystalline silicon. A 2.5-mm multiple-shell RSG was fabricated in 40 mum-thick SOI device layer using a simple two-mask process. Multiple-shells enable a higher operating frequency and larger resonant mass, essential components for reducing the mechanical noise floor of the sensor. Experimental data of a high-Q (111) multiple-shell prototype indicates sub-5 deg/hr Brownian noise floor, with a measured Allan deviation bias drift of 3.5 deg/hr. The gyroscope exhibits an open-loop rate sensitivity of approximately 16.7 mV/deg/s in vacuum.
Keywords :
Q-factor; gyroscopes; masks; microfabrication; microsensors; shells (structures); silicon; silicon-on-insulator; Allan deviation bias instability; Brownian noise floor; HARPSS process; SOI device layer; Si-SiO2; in-plane flexural mode; multiple-shell silicon gyroscope; open-loop rate sensitivity; resonating star gyroscope; size 2.5 mm; size 40 mum; size 65 mum; square shell; trench-refilled polysilicon structural material; trench-refilled structural material; two-mask process; vibratory microgyroscope; Crystalline materials; Crystallization; Fabrication; Gyroscopes; Noise reduction; Prototypes; Q factor; Resonance; Resonant frequency; Silicon; Mode-matching; SOI; multiple-shells; vibratory microgyroscopes;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2009.2020114