Title :
Optimal cuts of langasite, La/sub 3/Ga/sub 5/SiO/sub 14/ for SAW devices
Author :
Naumenko, Natalya ; Solie, Leland
Author_Institution :
Crystal Phys. Dept., Moscow Steel & Alloys Inst., Moscow, Russia
fDate :
3/1/2001 12:00:00 AM
Abstract :
The results of a theoretical and experimental investigation of the SAW propagation characteristics in an optimal region of langasite defined by the Euler angles /spl phi/ from -15/spl deg/ to +10/spl deg/, /spl theta/ from 120/spl deg/ to 165/spl deg/, and /spl psi/ from 20/spl deg/ to 45/spl deg/ are presented. Based on temperature coefficients of the elastic constants derived from experimental data, some optimal orientations of langasite characterized by high electromechanical coupling factor (k/sup 2/), zero power flow angle (PFA) and low or zero temperature coefficient of frequency (TCF) were found. The SAW velocity in the region of interest is highly anisotropic; this results in a significant amount of diffraction, which must be taken into account in the search for orientations useful for SAW devices. An orientation having simultaneously zero PFA, zero TCF, negligible diffraction, and relatively high piezoelectric coupling has been found and verified experimentally. The experimental results are in excellent agreement with the calculated SAW characteristics. The frequency response of a SAW device fabricated on the optimal cut of langasite is presented and demonstrates that high performance SAW filters can be realized on this optimal cut of langasite.
Keywords :
frequency response; gallium compounds; lanthanum compounds; silicon compounds; surface acoustic wave devices; ultrasonic propagation; ultrasonic velocity; Euler angles; La/sub 3/Ga/sub 5/SiO/sub 14/; PFA; SAW devices; SAW filters; SAW propagation characteristics; SAW velocity; TCF; electromechanical coupling factor; frequency response; langasite; power flow angle; temperature coefficients; Acoustic propagation; Crystalline materials; Frequency; Insertion loss; Load flow; Piezoelectric materials; Propagation losses; Surface acoustic wave devices; Surface acoustic waves; Temperature;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on