Title :
Macroscopic theory of surface acoustic wave gas microsensors
Author :
Lec, R. ; Vetelino, J.F. ; Falconer, R.S. ; Xu, Z.
Author_Institution :
Dept. of Electr. Eng., Maine Univ., Orono, ME, USA
Abstract :
Recently it has been experimentally demonstrated (see J.F. Vetelino et al., 1987) that a surface acoustic wave gas microsensor can detect concentrations of certain gases in the parts per million to parts per billion range. Here, a theoretical model is presented which is capable of predicting the change in sensor response as a function of gas concentration. The geometry of interest consists of a metal oxide film on a piezoelectric substrate. It is assumed that on exposure to a gas, the most significant change in the film is the creation of free charge carriers which cause the film to change from a dielectric to a semiconductor. The free carriers then interact with the electric field associated with the acoustic wave traveling at the film-piezoelectric interface, causing a corresponding change in the sensor response. Results are presented for a tungsten trioxide film on a lithium niobate substrate which has been exposed to hydrogen sulfide gas. The theoretical results are compared to experimental data
Keywords :
gas sensors; piezoelectric transducers; surface acoustic wave devices; H2S; LiNbO3; SAW devices; WO3; free carriers; gas concentration; metal oxide film; piezoelectric substrate; sensor response; surface acoustic wave gas microsensors; Acoustic sensors; Acoustic signal detection; Acoustic waves; Dielectric substrates; Gases; Microsensors; Piezoelectric films; Predictive models; Semiconductor films; Surface acoustic waves;
Conference_Titel :
Ultrasonics Symposium, 1988. Proceedings., IEEE 1988
Conference_Location :
Chicago, IL
DOI :
10.1109/ULTSYM.1988.49444