Title :
c-Axis Zig-Zag ZnO film ultrasonic transducers for designing longitudinal and shear wave resonant frequencies and modes
Author :
Yanagitani, Takahiko ; Morisato, Naoki ; Takayanagi, Shinji ; Matsukawa, Mami ; Watanabe, Yoshiaki
Author_Institution :
Grad. Sch. of Eng., Nagoya Inst. of Technol., Nagoya, Japan
fDate :
5/1/2011 12:00:00 AM
Abstract :
A method for designing frequencies and modes in ultrasonic transducers above the very-high-frequency (VHF) range is required for ultrasonic non-destructive evaluation and acoustic mass sensors. To obtain the desired longitudinal and shear wave conversion loss characteristics in the transducer, we propose the use of a c-axis zig-zag structure consisting of multilayered c-axis 23° tilted ZnO piezoelectric films. In this structure, every layer has the same thickness, and the c-axis tilt directions in odd and even layers are symmetric with respect to the film surface normal. c-axis zig-zag crystal growth was achieved by using a SiO2 low-temperature buffer layer. The frequency characteristics of the multilayered transducer were predicted using a transmission line model based on Mason´s equivalent circuit. We experimentally demonstrated two types of transducers: those exciting longitudinal and shear waves simultaneously at the same frequency, and those exciting shear waves with suppressed longitudinal waves.
Keywords :
elastic waves; piezoelectric thin films; piezoelectric transducers; ultrasonic transducers; zinc compounds; Mason equivalent circuit; SiO2; VHF range; ZnO; acoustic mass sensor; c-axis zig-zag piezoelectric film ultrasonic transducer; low-temperature buffer layer; shear wave resonant frequency; transmission line model; ultrasonic nondestructive evaluation; very-high-frequency range; Buffer layers; Crystals; Resonant frequency; Substrates; Transducers; Zinc oxide;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2011.1906