Title :
A CMOS-MEMS Resonator Integrated System for Oscillator Application
Author :
Pachkawade, Vinayak ; Ming-Huang Li ; Cheng-Syun Li ; Sheng-Shian Li
Author_Institution :
Inst. of Nanoengineering & Microsyst., Nat. Tsing Hua Univ., Hsinchu, Taiwan
Abstract :
This paper focuses on the design and development of a CMOS-MEMS resonator integrated with an on-chip amplifier with emphasis on its single-chip frequency reference oscillator implementation. A flexural-mode ring resonator with a desired mode shape featuring an inherent fully-differential mode of mechanical operation is designed using both analytical and finite element models. Two such resonators in low- and high-frequency domains, centered at 1.39 and 9.34 MHz respectively, are individually modeled using first principals, equations, and simulation tools to evaluate and improve device performance. In this paper, the device is also shown to offer a potential benefit of capacitive feedthrough cancelation up to 30 dB attributed to differential signaling scheme. Subsequently, both rapidly prototyped devices integrated with their on-chip transimpedance amplifiers are demonstrated using a commercially available TSMC 0.35-μm CMOS technology. A low-frequency resonator integrated with its on-chip amplifier exhibited decent overall performance capabilities in terms of much higher transmission spectra (closer to 0 dB), greater feedthrough suppression, higher signal-to-feedthrough ratio (35 dB), and exact phase shift (0°) at resonance frequency, therefore being a potential candidate for a single-chip oscillator system.
Keywords :
CMOS analogue integrated circuits; circuit resonance; finite element analysis; frequency-domain analysis; micromechanical resonators; operational amplifiers; oscillators; CMOS-MEMS resonator design; CMOS-MEMS resonator development; CMOS-MEMS resonator integrated system; TSMC CMOS technology; capacitive feedthrough cancelation; device performance; differential signaling; feedthrough suppression; finite element model; flexural-mode ring resonator; frequency 1.39 MHz; frequency 9.34 MHz; fully-differential mode; high-frequency domain; low-frequency domain; low-frequency resonator; mechanical operation; mode shape; on-chip amplifier; on-chip transimpedance amplifier; phase shift; resonance frequency; signal-to-feedthrough ratio; simulation tool; single-chip frequency reference oscillator; size 0.35 mum; transmission spectra; CMOS–MEMS integration; feedthrough cancellation; fully-differential; oscillator; resonator;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2013.2259809