DocumentCode
958797
Title
X-band thin film acoustic filters on GaAs
Author
Stokes, Robert B. ; Crawford, Jay D.
Author_Institution
TRW, Redondo Beach, CA, USA
Volume
41
Issue
6
fYear
1993
Firstpage
1075
Lastpage
1080
Abstract
The semiconductor bulk acoustic resonator (SBAR) is composed entirely of thin films, namely, piezoelectric aluminum nitride (AlN) and metal electrode films (primarily aluminum). It is fabricated on gallium arsenide (GaAs) wafers by depositing the thin film layers on top of the wafer and then etching away the GaAs from below, leaving a thin membrane supported by its edges. SBAR resonators and filters can be fabricated as part of the heterojunction bipolar transistors (HBT) or metal-semiconductor FET (MESFET) monolithic microwave integrated circuit (MMIC) processes, offering the high selectivity associated with acoustic resonators and filters to the MMIC designer. Performance of recent one-pole SBAR filter which has only 6.1-dB insertion loss at 7.8 GHz (second harmonic) and 7.5-dB insertion loss at 11.6 GHz (third harmonic), with fractional bandwidths less than 1% is described. Also described are two-pole (1.4% bandwidth) and four-pole (1.8% bandwidth) Chebyshev monolithic SBAR filters at 2.4 GHz, demonstrating flat passbands and good rejection. These results demonstrate that SBAR technology is practical for monolithic filters in MMICs at frequencies up to X -band
Keywords
MMIC; acoustic microwave devices; crystal resonators; gallium arsenide; microwave filters; passive filters; thin film devices; 2.4 to 11.6 GHz; 6.1 dB; 7.5 dB; Al-AlN-GaAs; Chebyshev filters; GaAs; HBT MMIC; MESFET MMIC; SHF; X-band; heterojunction bipolar transistors; monolithic filters; monolithic microwave integrated circuit; multipole filters; piezoelectric AlN; semiconductor bulk acoustic resonator; thin film acoustic filters; thin membrane; Band pass filters; Bandwidth; Gallium arsenide; Heterojunction bipolar transistors; MESFET integrated circuits; MMICs; Microwave filters; Piezoelectric films; Resonator filters; Semiconductor thin films;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/22.238530
Filename
238530
Link To Document