Title :
Suppression of the leaky SAW attenuation with heavy mechanical loading
Author :
Koskela, Julius ; Plessky, Victor P. ; Salomaa, Martti M.
Author_Institution :
Mater. Phys. Lab., Finland
fDate :
3/1/1998 12:00:00 AM
Abstract :
We discuss effects on the propagation of surface acoustic waves (SAW) due to heavy mass loading on Y-cut lithium niobate and lithium tantalate substrates. An abrupt reduction in the leaky-SAW (LSAW) attenuation is observed in the measured admittance of a long resonator test structure on 64/spl deg/-YX-cut lithium niobate for aluminum electrodes of thickness h//spl lambda//sub 0/ beyond 9-10%. This experimental fact is explained theoretically as the slowing down of the leaky wave below the velocity of the slow shear surface-skimming bulk wave (SSBW), such that energy dissipation into bulk-wave emission becomes inhibited. An infinite transducer structure is modeled using the periodic Green´s function and the boundary-element method (BEM); the computed theoretical properties well explain for the experimental findings. The model is further employed to quantify the leaky surface-wave attenuation characteristics as functions of the crystal-cut angle and the thickness of the electrodes. The resonance and antiresonance frequencies and the corresponding Q values are investigated to facilitate the selection of crystal cuts and electrode thicknesses. The transformation of the leaky SAW into a SAW-type nonleaky wave is also predicted to occur for gold electrodes, with considerably thinner finger structures.
Keywords :
Green´s function methods; Q-factor; acoustic wave absorption; boundary-elements methods; lithium compounds; surface acoustic wave transducers; surface acoustic waves; Al; Au; LiNbO/sub 3/; LiTaO/sub 3/; Q value; Y-cut substrate; admittance; antiresonance frequency; boundary element method; crystal cut; electrode thickness; energy dissipation; finger structure; leaky SAW attenuation; mechanical loading; periodic Green function; resonance frequency; resonator; slow shear surface skimming bulk wave; surface acoustic wave propagation; transducer; Acoustic measurements; Acoustic propagation; Acoustic waves; Admittance measurement; Attenuation measurement; Electrodes; Lithium compounds; Lithium niobate; Surface acoustic waves; Thickness measurement;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on