Title :
Acoustic interference suppression of QCM sensor arrays utilizing phononic crystals
Author :
Yung-Yu Chen ; Li-Chung Huang ; Yu-Ching Lin ; Tsung-Tsong Wu ; Jia-Hong Sun ; Wei-Shan Wang ; Esashi, Masayoshi
Author_Institution :
Dept. of Mech. Eng., Tatung Univ., Taipei, Taiwan
Abstract :
In this paper, we propose a sensor array consisting of multiple quartz crystal microbalances (QCMs) surrounded by phononic crystals. Phononic crystals are utilized for isolating acoustic energy of individual bulk acoustic wave sensor and suppressing the interference. The resonance response of a QCM was calculated by finite element analysis. A -square-lattice phononic crystal structure was designed to have a complete band gap covering the QCM´s resonance frequency. Finally, the monolithic QCM sensor arrays with/without phononic crystals were fabricated by micromachining processes and measured to evaluate the isolation performance of the phononic crystals. As a result, the QCM has a resonance frequency of around 20.8 MHz when the AT-cut quartz plate is 80 μm thic . The designed phononic crystal structure, whose lattice constant and filling ratio are 100 μm and 0.475, has a complete band gap from 1944 to 23.1 MHz. Besides, the QCM sensor arrays with phononic crystals were successfully fabricated by deep reactive ion etching. Measurement results show the phononic crystal with band gap indeed forbids effectively acoustic waves excited by QCMs and reduces spurious modes in the frequency response of the sensor array. Accordingly, the phononic crystal is verified to be capable of suppressing the acoustic interference between adjacent QCMs in a sensor array.
Keywords :
acoustic transducers; acoustic wave interference; bulk acoustic wave devices; crystal structure; energy gap; finite element analysis; interference suppression; microfabrication; microsensors; phononic crystals; photonic crystals; quartz crystal microbalances; sensor arrays; sputter etching; AT-cut quartz plate; acoustic interference suppression; band gap; bandwidth 19.44 MHz to 23.1 MHz; bulk acoustic wave sensor; finite element analysis; frequency response; microfabrication; micromachining process; monolithic QCM sensor array; phononic crystal isolation performance evaluation; quartz crystal microbalance; reactive ion etching; resonance response; size 80 mum; square lattice phononic crystal structure; Acoustics; Arrays; Crystals; Etching; Frequency measurement; Photonic band gap; Resonant frequency; acoustic interference suppression; isolation; phononic crystal; sensor array;
Conference_Titel :
Ultrasonics Symposium (IUS), 2012 IEEE International
Conference_Location :
Dresden
Print_ISBN :
978-1-4673-4561-3
DOI :
10.1109/ULTSYM.2012.0440