Title :
High frequency dual-mode thermal-piezoresistive oscillators
Author :
Rahafrooz, Amir ; Pourkamali, Siavash
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Denver, Denver, CO, USA
Abstract :
This work presents high frequency fully-micromechanical self-sustained oscillators. It has previously been demonstrated that interactions between mechanical strain and thermally generated actuation forces in micromechanical structures through the piezoresistive effect, can result in a positive feedback loop leading to self-sustained oscillation without the need for an electronic amplifier. In our previous work we demonstrated self-sustained oscillation of single-crystalline silicon dual-plate structures with frequencies up to 6.7MHz. This work demonstrates higher frequency thermal-piezoresistive self-sustained oscillators with frequencies up to 36MHz using I3-shaped resonant structures. Due to the highly nonlinear (mixed flexural-extensional) deformation of actuator/piezoresistors in such structures, they can provide two dominant output frequency harmonics. The dominant harmonic can be selected by changing the resonator bias current.
Keywords :
VHF oscillators; micromechanical devices; piezoresistive devices; crystalline silicon dual-plate structures; electronic amplifier; high frequency dual-mode thermal-piezoresistive oscillators; high frequency fully-micromechanical self-sustained oscillators; mechanical strain; micromechanical structures; piezoresistive effect; positive feedback loop; self-sustained oscillation; thermally generated actuation forces; Actuators; Harmonic analysis; Oscillators; Piezoresistance; Power demand; Resonant frequency; Silicon;
Conference_Titel :
Frequency Control and the European Frequency and Time Forum (FCS), 2011 Joint Conference of the IEEE International
Conference_Location :
San Fransisco, CA
Print_ISBN :
978-1-61284-111-3
DOI :
10.1109/FCS.2011.5977864