Bulk-acoustic waves radiated from low-loss surface-acoustic-wave resonators
J.V. Knuuttila, Juha J. Vartiainen, J. Koskela, V.P. Plessky, C.S. Hartmann, M.M. Salomaa
Abstract
J.V. Knuuttila, Juha J. Vartiainen, J. Koskela, V.P. Plessky, C.S. Hartmann, M.M. Salomaa
Abstract
The bulk-acoustic conductance in low-loss surface-acoustic-wave filters utilizing leaky surface-acoustic waves is significant for the device operation. Here we directly measure the bulk acoustic wave radiation pattern on the backside of the piezoelectric substrate with the help of a scanning laser-interferometer probe. For the case studied, a leaky surface-acoustic wave resonator on 36°YX–LiTaO3, a numerical calculation is carried out and the different bulk-wave modes arriving at the substrate bottom are identified by comparing the measured and computed energy-flow angles. The results are expected to lead to improved models for describing the operation of low-loss surface-acoustic-wave filters.
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The bulk-acoustic conductance in low-loss surface-acoustic-wave filters utilizing leaky surface-acoustic waves is significant for the device operation. Here we directly measure the bulk acoustic wave radiation pattern on the backside of the piezoelectric substrate with the help of a scanning laser-interferometer probe. For the case studied, a leaky surface-acoustic wave resonator on 36°YX–LiTaO3, a numerical calculation is carried out and the different bulk-wave modes arriving at the substrate bottom are identified by comparing the measured and computed energy-flow angles. The results are expected to lead to improved models for describing the operation of low-loss surface-acoustic-wave filters.
Key concepts: Surface acoustic wave, Acoustics, Resonator, Acoustic wave, Physical acoustics, Surface acoustic wave sensor, Acoustic interferometer, Materials science