DocumentCode :
1232252
Title :
Influence of spinel substrate and over-layer for enhanced SAW and AO properties with KNbO/sub 3/ thin film
Author :
Nayak, Ranu ; Gupta, Vinay ; Sreenivas, Kondepudy
Author_Institution :
Dept. of Phys. & Astrophys., Delhi Univ., India
Volume :
50
Issue :
6
fYear :
2003
fDate :
6/1/2003 12:00:00 AM
Firstpage :
577
Lastpage :
584
Abstract :
Surface acoustic wave (SAW) propagation characteristics have been studied using modeling calculations for a potassium niobate (KNbO/sub 3/) thin film-layered structure with [001] and [110] orientation on a single crystal spinel (MgAl/sub 2/O/sub 4/) substrate, and a spinel buffer layer on silicon. Variation in the electromechanical coupling and acoustic attenuation has been compared. A significantly high value of coupling factor (k/sub max//sup 2/=23%) is obtained for the [001]KNbO/sub 3//spinel structure by introducing an optimum thickness of spinel over-layer for potential wide bandwidth SAW device applications. The dispersion characteristics with the [110] KNbO/sub 3/ orientation indicate an initial peak in the coupling coefficient value (k/sub max//sup 2/=8.8%) at a relatively low KNbO/sub 3/ film thickness that appears attractive for fabricating devices with thinner films. The KNbO/sub 3/ film with [001] orientation is found attractive for efficient acousto-optic (AO) device application with the formation of a symmetric waveguide structure (spinel(0.5 /spl mu/m)/KNbO/sub 3/(1.0 /spl mu/m)/spinel). A high value of k/sup 2/=23.5% with 50% diffraction efficiency has been obtained for the spinel(0.5 /spl mu/m)/KNbO/sub 3/(1.0 /spl mu/m)/spinel structure at 1 GHz SAW frequency and 633 nm optical wavelength at a very low input drive power of 15.4 mW.
Keywords :
acoustic wave absorption; acoustic wave diffraction; acoustic wave propagation; acousto-optical effects; electromechanical effects; piezoelectric thin films; potassium compounds; surface acoustic waves; 0.5 micron; 1 GHz; 1 micron; 15.4 mW; 633 nm; KNbO/sub 3/; MgAl/sub 2/O/sub 4/; acoustic attenuation; acoustooptical properties; diffraction efficiency; electromechanical coupling; enhanced SAW; piezoelectric thin film-layered structure; spinel substrate influence; surface acoustic wave propagation; Acoustic devices; Acoustic propagation; Acoustic waves; Attenuation; Bandwidth; Buffer layers; Niobium compounds; Silicon; Substrates; Surface acoustic waves;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2003.1209544
Filename :
1209544
Link To Document :
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