Title :
6D-2 MEMS-Enabled Miniaturized Particulate Matter Monitor Employing 1.6 GHz Aluminum Nitride Thin-Film Bulk Acoustic Wave Resonator (FBAR) and Thermophoretic Precipitator
Author :
Black, Justin P. ; Elium, Alex ; White, Richard M. ; Apte, Michael G. ; Gundel, Lara A. ; Cambie, Rossana
Author_Institution :
Univ. of California, Berkeley
Abstract :
We describe a miniaturized MEMS particulate matter (PM) monitor that employs the deposition of particulates from a sample stream onto a 1.6 GHz piezoelectric thin-film bulk acoustic wave resonator (FBAR) by means of thermophoresis, and determination of the mass deposited by measuring the resonant frequency shift of a Pierce oscillator. Real-time measurements made in an environmental chamber over several weeks and during a week-long field study in a residence showed excellent correlation with the responses of other commercial aerosol instruments. An added mass of 1 pg could be resolved with the sensor, and the level of detection was 18 mug / m3. The monitor weighs 114 g, has a volume of approximately 245 cm3, consumes less than 100 mW, and would cost less than $100 USD in small quantities. Efforts to further miniaturize the sensor and integrate it with a cell-phone are described.
Keywords :
aerosols; aluminium compounds; bulk acoustic wave devices; crystal resonators; gas sensors; microsensors; piezoelectric thin films; MEMS; Pierce oscillator; aluminum nitride thin film; cell phone integration; microsensor; miniaturized particulate matter monitor; piezoelectric bulk acoustic wave resonator; resonant frequency shift; thermophoresis; thermophoretic precipitator; Acoustic measurements; Acoustic waves; Aluminum nitride; Film bulk acoustic resonators; Frequency measurement; Micromechanical devices; Monitoring; Particle measurements; Piezoelectric films; Transistors;
Conference_Titel :
Ultrasonics Symposium, 2007. IEEE
Conference_Location :
New York, NY
Print_ISBN :
978-1-4244-1384-3
Electronic_ISBN :
1051-0117
DOI :
10.1109/ULTSYM.2007.128