• DocumentCode
    3560949
  • Title

    Fluorescent Gas Sensors Based on Nanoporous Optical Resonators (Microcavities) Infiltrated With Sensory Emissive Polymers

  • Author

    Ong, Pang-Leen ; Levitsky, Igor A.

  • Author_Institution
    Emitech, Inc., Fall River, MA, USA
  • Volume
    11
  • Issue
    11
  • fYear
    2011
  • Firstpage
    2947
  • Lastpage
    2951
  • Abstract
    In this contribution, we report fluorescent gas chemosensors for detection of nitroaromatic vapors and other classes of volatile organic compounds based on porous silicon (PSi) microcavity (MC) infiltrated with sensory emissive polymers. Such hybrid functional sensors have several advantages over traditional fluorescent chemosensors, where the sensory polymers are deposited on flat substrate. This includes a high interfacial area of nanoporous Si (high sensitivity), narrow fluorescent band due to photon confinement, dependence of the spectral peak position on nature of analyte (enhanced selectivity), and fast recovery time. We demonstrated that deep and uniform polymer infiltration is critical for effective gas sensing and investigated the experimental conditions required for preparation of high-quality hybrid sensors. In the case of deep infiltration, the broad polymer fluorescence (FWHM ~100 nm) shows a narrowing to the resonance peak (FWHM ~10 nm) with narrow intensity angle diagram. In addition, the potential of the sensor array platform and sensor recovery under ultrasound power is discussed.
  • Keywords
    elemental semiconductors; fluorescence; gas sensors; microcavities; nanophotonics; nanoporous materials; nanosensors; optical resonators; organic compounds; polymers; porous semiconductors; sensor arrays; silicon; Si; broad polymer fluorescence; deep infiltration; fluorescent gas chemosensor; hybrid functional sensor; nanoporous optical resonator; nanoporous silicon; narrow intensity angle diagram; nitroaromatic vapor detection; photon confinement; polymer infiltration; porous silicon microcavity; sensor array; sensory emissive polymer; spectral peak position; volatile organic compound; Explosives; Fluorescence; Optical sensors; Plastics; Reflectivity; Silicon; Chemical sensors; explosive detectors; gas detectors; nanostructured materials;
  • fLanguage
    English
  • Journal_Title
    Sensors Journal, IEEE
  • Publisher
    ieee
  • Conference_Location
    5/5/2011 12:00:00 AM
  • ISSN
    1530-437X
  • Type

    jour

  • DOI
    10.1109/JSEN.2011.2150213
  • Filename
    5762584