DocumentCode :
873468
Title :
New method of change in temperature coefficient delay of acoustic waves in thin piezoelectric plates
Author :
Zaitsev, Boris D. ; Kuznetsova, Iren E. ; Joshi, Shrinivas G. ; Kuznetsova, Anastasia S.
Author_Institution :
Inst. of Radio Eng. & Electron., Russian Acad. of Sci., Saratov
Volume :
53
Issue :
11
fYear :
2006
fDate :
11/1/2006 12:00:00 AM
Firstpage :
2113
Lastpage :
2120
Abstract :
As is well-known, the development of highly effective and thermostable acoustic devices assumes using the acoustic waves with high coefficient of electromechanical coupling (K2) and low temperature coefficient of delay (TCD). At present, it also is well-known that fundamental shear horizontal (SH0) acoustic waves in thin piezoelectric plates possess significantly more electromechanical coupling compared to surface acoustic waves (SAW) in the same material. However, although the value of TCD of SH0 waves is insignificantly less than for SAW, this is not enough for development of thermostable devices. This paper suggests a new way of decreasing TCD of SH0 waves in piezoelectric plates at a high level of electromechanical coupling. This way assumes to use the structure containing the piezoelectric plate and liquid with the special dependence of permittivity on temperature. Theoretical and experimental investigation showed that, for SH0 wave in YX LiNbO3 plate at hf=700 m/s (h=plate thickness, f=wave frequency) the presence of butyl acetate can decrease the value of TCD by six times at K2=30%. In a whole the obtained results open the wide prospect of using SH0 wave in thin piezoelectric plate for development of highly effective and thermo-stable acoustic devices
Keywords :
acoustic waves; electromechanical effects; lithium compounds; permittivity; piezoelectric materials; plates (structures); LiNbO3; butyl acetate; electromechanical coupling coefficient; permittivity; piezoelectric liquid; plate thickness; shear horizontal acoustic waves; temperature coefficient delay; temperature dependence; thermostable acoustic devices; thin piezoelectric plates; wave frequency; Acoustic devices; Acoustic materials; Acoustic waves; Delay effects; Permittivity; Piezoelectric materials; Propagation delay; Surface acoustic wave devices; Surface acoustic waves; Temperature;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2006.151
Filename :
4037219
Link To Document :
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