
This paper presents a model suitable to design and characterize broadband thin film sensors based on piezoelectric polymers. The aim is to describe adequately the sensor behavior, with a reasonable number of parameters and based on well-known physical equations. The mechanical variables are described by an acoustic transmission line. The electrical behavior is described by the quasi-static approximation, given the large difference between the velocities of propagation of the electrical and mechanical disturbances. The line parameters include the effects of the elastic and electrical properties of the material. The model was validated with measurements of a poly(vinylidene flouride) sensor designed for short-pulse detection. The model variables were calculated from the properties of the polymer at frequencies between 100 Hz and 30 MHz and at temperatures between 283 K and 313 K, a relevant range for applications in biology and medicine. The simulations agree very well with the experimental data, predicting satisfactorily the influence of temperature and the dielectric properties of the polymer on the behavior of the sensor. Conversely, the model allowed the calculation of the material dielectric properties from the measured response of the sensor, with good agreement with the published values.
nanoparticles detection, https://purl.org/becyt/ford/2.2, https://purl.org/becyt/ford/1.3, short pulse detection, ultrasonic sensors, https://purl.org/becyt/ford/2, https://purl.org/becyt/ford/1, piezoelectric thin films
nanoparticles detection, https://purl.org/becyt/ford/2.2, https://purl.org/becyt/ford/1.3, short pulse detection, ultrasonic sensors, https://purl.org/becyt/ford/2, https://purl.org/becyt/ford/1, piezoelectric thin films
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