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  4. Ultrafine aerosol particle sizer based on piezoresistive microcantilever resonators with integrated air-flow channel
 
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2021
Journal Article
Title

Ultrafine aerosol particle sizer based on piezoresistive microcantilever resonators with integrated air-flow channel

Abstract
To monitor airborne nano-sized particles (NPs), a single-chip differential mobility particle sizer (DMPS) based on resonant micro cantilevers in defined micro-fluidic channels (µFCs) is introduced. A size bin of the positive-charged fraction of particles herein is separated from the air stream by aligning their trajectories onto the cantilever under the action of a perpendicular electrostatic field of variable strength. We use previously described µFCs and piezoresistive micro cantilevers (PMCs) of 16 ng mass fabricated using micro electro mechanical system (MEMS) technology, which offer a limit of detection of captured particle mass of 0.26 pg and a minimum detectable particulate mass concentration in air of 0.75 µg/m³. Mobility sizing in 4 bins of a nebulized carbon aerosol NPs is demonstrated based on finite element modelling (FEM) combined with a-priori knowledge of particle charge state. Good agreement of better than 14% of mass concentration is observed in a chamber test for the novel MEMS-DMPS vs. a simultaneously operated standard fast mobility particle sizer (FMPS) as reference instrument. Refreshing of polluted cantilevers is feasible without de-mounting the sensor chip from its package by multiply purging them alternately in acetone steam and clean air.
Author(s)
Bertke, Maik
Kirsch, Ina  
Uhde, Erik  
Peiner, Erwin
Journal
Sensors. Online journal  
Open Access
DOI
10.3390/s21113731
Additional link
Full text
Language
English
Fraunhofer-Institut für Holzforschung Wilhelm-Klauditz-Institut WKI  
Keyword(s)
  • differential mobility particle sizer

  • micro electro mechanical system

  • micro-fluidic channel

  • piezoresistive micro cantilever

  • picogram balance

  • ultrafine particles

  • carbon aerosol

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