DocumentCode :
186079
Title :
Active Q-control for improved insertion loss micromechanical filters
Author :
Thura Lin Naing ; Nilchi, Jalal Naghsh ; Ruonan Liu ; Rocheleau, Tristan O. ; Nguyen, Clark T.-C
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of California at Berkeley, Berkeley, CA, USA
fYear :
2014
fDate :
19-22 May 2014
Firstpage :
1
Lastpage :
6
Abstract :
The use of active feedback in closed-loop with two electrodes of a four-electrode capacitive-gap transduced wineglass disk resonator has enabled boosting of the effective resonator Q and independent control of insertion loss across the two other electrodes. To demonstrate the utility of this approach, two such Q-boosted resonators wired as a parallel-type micro-mechanical filter achieve a tiny 0.001% bandwidth passband centered around 61 MHz with only 2.7 dB of insertion loss - something not possible with the intrinsic resonator Q of 57,000, but quite possible with Q´s actively boosted to 670,000. In the feedback loop, the gain and phase of the active circuit are controlled to precisely add or cancel resonator damping while maintaining a suitable loop gain (i.e., less than unity if the feedback is positive). Unlike past kHz-frequency efforts, the split electrode design used here removes the amplifier feedback loop from the signal path allowing independent control of input-output coupling, Q, and frequency, the last of which comes about via either electrical stiffness changes or intentional changes in active circuit phase shift. The ability of this scheme to both raise and decrease resonator Q not only allows creation of narrow channel-select filters with insertion loss lower than otherwise achievable with un-boosted Q´s, but also opens the possibility of maximizing the dynamic range of a communication front-end without the need for a variable gain LNA.
Keywords :
active networks; amplifiers; closed loop systems; electrodes; feedback; micromechanical devices; resonator filters; LNA; Q-boosted resonators; active Q-control; active circuit; active circuit phase shift; active feedback; amplifier feedback loop; bandwidth passband; channel-select filters; closed-loop; communication front-end; electrical stiffness; feedback loop; four-electrode capacitive-gap; frequency 61 MHz; improved insertion loss micromechanical filters; loop gain; parallel-type micromechanical filter; resonator damping; split electrode design; wine-glass disk resonator; Band-pass filters; Bandwidth; Electrodes; Gain; Insertion loss; Resonant frequency; Resonator filters; MEMS; RF MEMS; active-Q control; filter; low insertion loss; micromechani-cal; resonator; wine-glass disk;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Frequency Control Symposium (FCS), 2014 IEEE International
Conference_Location :
Taipei
Type :
conf
DOI :
10.1109/FCS.2014.6860011
Filename :
6860011
Link To Document :
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