DocumentCode :
2096864
Title :
BAW temperature sensitivity and coupling in langanite
Author :
de Cunha, M.P. ; Adler, Eric L. ; Malocha, Donald C.
Author_Institution :
Dept. of Electr. Eng., Sao Paulo Univ., Brazil
Volume :
2
fYear :
1999
fDate :
1999
Firstpage :
883
Abstract :
One of the new quartz-like materials belonging to the trigonal 32 class is langanite (LGN, La3Ga5.5Nb0.5O 14). High-quality langanite single crystals have become available, and although similar in composition and structure to langasite (LGS, La3Ga5SiO14), LGN has smaller thermal expansion coefficients, and comparable piezoelectric constants to LGS; these are desirable material properties for both SAW and BAW applications that require low dependence on temperature. The present research examines in detail the characteristics for LGN of: phase velocity, temperature coefficient of frequency (TCF), electromechanical coupling coefficient, and power flow angle for both singly and doubly rotated plate cuts. Contour plots for the characteristics are given showing the orientation regions where zero TCF and high coupling are found, suggesting potentially interesting orientations for practical BAW device design. Temperature compensated cut regions with coupling coefficients as high as 0.16 are predicted, which is 100% higher than the value for AT cut quartz. A temperature compensated cut with cubic behavior for Δf/fo around room temperature is also identified. With such desirable properties, LGN is a promising material for BAW applications that require low temperature sensitivity (maybe surpassing LGS) with superior bandwidth characteristics due to its larger values of coupling coefficient. A number of orientations with low temperature coefficients of frequency and high coupling are identified
Keywords :
acoustic materials; bulk acoustic wave devices; gallium compounds; lanthanum compounds; piezoelectric materials; BAW device; LGN; La3Ga5.5Nb0.5O14; electromechanical coupling coefficient; langanite single crystal; phase velocity; piezoelectric constant; power flow angle; temperature coefficient of frequency; temperature compensation; temperature sensitivity; thermal expansion coefficient; Crystalline materials; Crystals; Frequency; Load flow; Material properties; Niobium; Surface acoustic waves; Temperature dependence; Temperature sensors; Thermal expansion;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium, 1999. Proceedings. 1999 IEEE
Conference_Location :
Caesars Tahoe, NV
ISSN :
1051-0117
Print_ISBN :
0-7803-5722-1
Type :
conf
DOI :
10.1109/ULTSYM.1999.849132
Filename :
849132
Link To Document :
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