DocumentCode
1433592
Title
Tunability of aluminum nitride acoustic resonators: a phenomenological approach
Author
Defay, E. ; Ben Hassine, N. ; Emery, P. ; Parat, G. ; Abergel, J. ; Devos, A.
Author_Institution
LETI, CEA, Grenoble, France
Volume
58
Issue
12
fYear
2011
fDate
12/1/2011 12:00:00 AM
Firstpage
2516
Lastpage
2520
Abstract
A phenomenological approach is developed to identify the physical parameters causing the dc-voltage-induced tunability of aluminum nitride (AlN) acoustic resonators, widely used for RF filters. The typical resonance frequency of these resonators varies from 2.038 GHz at -200 V to 2.062 GHz at +200 V. This indicates, based on these RF measurements versus dc bias and the model used, that the AlN stiffness variation versus dc bias is the prominent effect because both resonance and antiresonance experience a similar variation, respectively, 24 MHz and 19 MHz at 400 V. Picosecond ultrasonics were also used to prove independently that the acoustic velocity (and therefore AlN stiffness) is sensitive to dc bias and that the variation induced is comparable to that extracted from the resonance measurements. It turned out that the stiffness relative variation for an electric field of 1 V/μm extracted from picosecond ultrasonics is 54 ppm-μm/V. This is in good agreement with the value extracted from the RF measurements, namely 57.2 ppm-μm/V. The overall tunability of these AlN resonators reaches 1.1%, which is an interesting figure, although probably not high enough for genuine applications.
Keywords
III-V semiconductors; acoustic resonators; aluminium compounds; wide band gap semiconductors; AlN; RF measurements; acoustic velocity; aluminum nitride acoustic resonators; dc bias; dc-voltage-induced tunability; frequency 19 MHz; frequency 2.038 GHz to 2.062 GHz; frequency 24 MHz; phenomenological approach; picosecond ultrasonics; resonance measurements; stiffness relative variation; typical resonance frequency; Acoustics; Couplings; Indium tin oxide; Materials; Radio frequency; Resonant frequency; Resonator filters; Acoustics; Aluminum Compounds; Computer Simulation; Computer-Aided Design; Equipment Design; Equipment Failure Analysis; Micro-Electrical-Mechanical Systems; Models, Theoretical; Telecommunications; Transducers;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2011.2114
Filename
6141142
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