DocumentCode
1756816
Title
Silicon Nanowire Resonators: Aerosol Nanoparticle Mass Sensing in the Workplace
Author
Wasisto, H. ; Merzsch, Stephan ; Stranz, Andrej ; Waag, Andreas ; Uhde, Erik ; Salthammer, Tunga ; Peiner, Erwin
Author_Institution
Inst. of Semicond. Technol. (IHT), Tech. Univ. Braunschweig, Braunschweig, Germany
Volume
7
Issue
2
fYear
2013
fDate
41426
Firstpage
18
Lastpage
23
Abstract
In this article, We focus on silicon nanowire (SiNW)-based resonators that were fabricated and employed to sense aerosol nanoparticles (NPs) by measuring resonant frequency shifts induced by the mass of stuck NPs. The fabrication of SiNW arrays was performed using inductively coupled plasma (ICP) cryogenic dry etching and multiple thermal oxidations. The SiNWs were coated with gold (Au) for contacting to the homebuilt electrostatic NP sampler to collect the flowing NPs. A piezoelectric shear actuator mounted in the frequency measurement system was used to excite the SiNW sensors into resonance. Tested in a titanium dioxide (TiO2) aerosol sampling with a total concentration of ~8,500 NPs/cm3, the sensor displayed its feasibility as a nanobalance to detect aerosol NPs in the femtogram scale with a mass sensitivity of 7.1 Hz/fg and a mass resolution of 31.6 fg. To extend the operating life of the sensor, an ultrasonic removal method was used to detach the adhered NPs.
Keywords
aerosols; cryogenics; electrostatic devices; elemental semiconductors; frequency measurement; gold; mass measurement; micromechanical resonators; nanofabrication; nanoparticles; nanosensors; nanowires; oxidation; piezoelectric actuators; semiconductor counters; silicon; sputter etching; titanium compounds; Au; NP; Si; SiNW array fabrication; SiNW sensors; SiNW-based resonators; TiO2; aerosol nanoparticle mass sensing; femtogram scale; frequency measurement system; home built electrostatic NP sampler; inductively coupled plasma cryogenic dry etching; multiple thermal oxidations; piezoelectric shear actuator; resonant frequency shift measurement; silicon nanowire resonators; titanium dioxide aerosol sampling; ultrasonic removal method; Acoustics; Cryogenic electronics; Nanoparticles; Nanowires; Personnel; Quantitative analysis; Resonant frequency; Resonators; Sensor phenomena and characterization; Silicon;
fLanguage
English
Journal_Title
Nanotechnology Magazine, IEEE
Publisher
ieee
ISSN
1932-4510
Type
jour
DOI
10.1109/MNANO.2013.2260462
Filename
6525342
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