Title :
Langasite surface acoustic wave gas sensors: modeling and verification
Author :
Peng Zheng ; Greve, D.W. ; Oppenheim, Irving J.
Author_Institution :
Nat. Energy Technol. Lab., Pittsburgh, PA, USA
Abstract :
We report finite element simulations of the effect of conductive sensing layers on the surface wave velocity of langasite substrates. The simulations include both the mechanical and electrical influences of the conducting sensing layer. We show that three-dimensional simulations are necessary because of the out-of-plane displacements of the commonly used (0, 138.5, 26.7) Euler angle. Measurements of the transducer input admittance in reflective delay-line devices yield a value for the electromechanical coupling coefficient that is in good agreement with the three-dimensional simulations on bare langasite substrate. The input admittance measurements also show evidence of excitation of an additional wave mode and excess loss resulting from the finger resistance. The results of these simulations and measurements will be useful in the design of surface acoustic wave gas sensors.
Keywords :
electric admittance measurement; electromechanical effects; finite element analysis; gas sensors; surface acoustic wave delay lines; surface acoustic wave sensors; surface acoustic wave transducers; Euler angle; SAW gas sensor; admittance measurement; conductive sensing layer; electromechanical coupling coefficient; finger resistance; finite element simulation; langasite substrate; reflective delay line device; surface acoustic wave; surface wave velocity; three dimensional simulation; transducer; wave mode; Admittance; Admittance measurement; Sensors; Solid modeling; Substrates; Surface acoustic waves;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2013.2599