Title :
Analysis of piezoelectric bulk-acoustic-wave resonators as detectors in viscous conductive liquids
Author :
Josse, Fabien ; Shana, Zack A. ; Radtke, David E. ; Haworth, Daniel T.
Author_Institution :
Dept. of Electr. & Comput. Eng., Marquette Univ., Milwaukee, WI, USA
Abstract :
An analytical solution for the resonance condition of a piezoelectric quartz resonator with one surface in contact with a viscous conductive liquid is presented. The characteristic equation that describes the resonance condition and accounts for all interactions including acoustoelectric interactions with ions and dipoles in the solution is obtained in terms of the crystal and liquid parameters. A simple expression for the change in the resonance frequency is obtained. For viscous nonconductive solutions, the frequency change is reduced to a relationship in terms of the liquid density and viscosity. For dilute conductive liquid, the change in frequency is derived in terms of the solution conductivity and dielectric constant. The boundary conditions for the problem are defined with and without the electrical effects of electrodes. Experiments were conducted with various viscous and conductive chemical liquids using a fabricated miniature liquid flow cell containing an AT-cut quartz crystal resonator. The results, which show good agreement with the theory, on the use of quartz crystal resonators as conductivity and/or viscosity sensors are reported.<>
Keywords :
acoustic resonators; crystal resonators; electrical conductivity measurement; quartz; viscometers; AT-cut quartz crystal; SiO/sub 2/; acoustoelectric interactions; analytical solution; boundary conditions; chemical liquids; conductivity sensors; detectors; dielectric constant; electrode electrical effects; frequency change; miniature liquid flow cell; piezoelectric bulk-acoustic-wave resonators; piezoelectric quartz resonator; resonance condition; resonance frequency; solution conductivity; viscosity sensors; viscous conductive liquids; Boundary conditions; Chemicals; Conductivity; Dielectric constant; Electrodes; Equations; Fluid flow; Resonance; Resonant frequency; Viscosity;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on