Title :
Damping mechanisms in light and heavy-doped dual-ring and double-ended tuning fork resonators (DETF)
Author :
Rodriguez, J. ; Yang, Y. ; Ahn, C.H. ; Chen, Y. ; Ng, E.J. ; Hong, V.A. ; Ghaffari, S. ; Kenny, T.W.
Author_Institution :
Dept. of Mech. Eng., Stanford Univ., Stanford, CA, USA
Abstract :
We present models and measurements of lightly-doped and heavily-doped dual ring/dual-bar and double-ended tuning fork (DETF) resonators. Both models and measurements indicate that the Q of these resonators is only slightly impacted by the doping level, despite being dominated by thermoelastic dissipation (TED), which has a strong dependence on doping-dependent material properties. We compare experimental measurements of Q over a range of temperatures with models for TED, anchor damping and squeeze film damping. We found that the Q of light and heavily-doped resonators can be accounted for by a combination of TED and anchor or squeeze film damping. These results indicate that it is possible to fully account for the damping mechanisms in MEMS resonators if temperature-dependent measurements of Q are compared with models of the important mechanisms including the temperature-dependent materials properties.
Keywords :
damping; micromechanical resonators; semiconductor doping; thermoelasticity; vibrations; DETF; MEMS resonators; TED; anchor damping; damping mechanisms; double-ended tuning fork resonators; squeeze film damping; thermoelastic dissipation; Damping; Doping; Frequency measurement; Q measurement; Semiconductor process modeling; Temperature dependence; Temperature measurement; Dual-ring; damping; double-ended tuning fork (DETF); energy dissipation; heavily-doped; lightly-doped; quality factor; thermoelastic dissipation;
Conference_Titel :
Solid-State Sensors, Actuators and Microsystems (TRANSDUCERS), 2015 Transducers - 2015 18th International Conference on
Conference_Location :
Anchorage, AK
DOI :
10.1109/TRANSDUCERS.2015.7181348