• DocumentCode
    792117
  • Title

    Gas sensitivity comparison of polymer coated SAW and STW resonators operating at the same acoustic wave length

  • Author

    Avramov, Ivan D. ; Rapp, Michael ; Kurosawa, Shigeru ; Krawczak, Piotr ; Radeva, Ekaterina Ivanova

  • Author_Institution
    Inst. of Solid State Phys., Bulgarian Acad. of Sci., Sofia, Bulgaria
  • Volume
    2
  • Issue
    3
  • fYear
    2002
  • fDate
    6/1/2002 12:00:00 AM
  • Firstpage
    150
  • Lastpage
    159
  • Abstract
    Results from systematic gas sensing experiments on polymer coated surface-transverse-wave (STW) and surface-acoustic-wave (SAW) based two-port resonators on rotated Y-cut quartz, operating at the same acoustic wavelength of 7.22 μm, are presented. The acoustic devices are coated with chemosensitive films of different viscoelastic properties and thicknesses, such as solid hexamethyldisiloxane (HMDSO), semisolid styrene (ST), and soft allyl alcohol (AA). The sensor sensitivities to vapors of different chemical analytes are automatically measured in a sensor head, evaluated, and compared. It is shown that thin HMDSO- and ST-coated STW sensors are up to 3.8 times more sensitive than their SAW counterparts, while SAW devices coated with thick soft AA-films are up to 3.6 times more sensitive than the STW ones. This implies that SAWs are more suitable for operation with soft coatings while STWs perform better with solid and semisolid films. A close-to-carrier phase noise evaluation shows that the vapor flow homogeneity, the analyte concentration, its sorption dynamics, and the sensor oscillator design are the major limiting factors for the sensor noise and its resolution. A well designed ST-coated 700 MHz STW sensor provides a 178 kHz sensor signal at a 630 ppm concentration of tetra-chloroethylene and demonstrates short-term stability of 3×10-9/s which results in a sensor resolution of about 7 parts per billion (ppb).
  • Keywords
    acoustic noise; gas sensors; phase noise; polymer films; stability; surface acoustic wave resonators; surface acoustic wave sensors; surface chemistry; 178 kHz; 7.22 micron; 700 MHz; HMDSO-coated STW sensors; SAW sensors; ST-coated STW sensors; SiO2; analyte concentration; chemical analyte vapors; chemosensitive films; close-to-carrier phase noise evaluation; gas detectors; gas sensitivity; operating acoustic wavelength; polymer coated SAW resonators; polymer coated STW resonators; polymer coated surface-acoustic-wave based two-port resonators; polymer coated surface-transverse-wave based two-port resonators; semisolid styrene; sensor head; sensor noise; sensor oscillator design; sensor resolution; sensor signal; short-term stability; soft allyl alcohol; solid hexamethyl disiloxane; sorption dynamics; systematic gas sensing experiments; tetra-chloroethylene; vapor flow homogeneity; viscoelastic properties; Acoustic devices; Acoustic sensors; Acoustic waves; Chemical analysis; Chemical sensors; Phase noise; Polymer films; Solids; Surface acoustic wave devices; Surface acoustic waves;
  • fLanguage
    English
  • Journal_Title
    Sensors Journal, IEEE
  • Publisher
    ieee
  • ISSN
    1530-437X
  • Type

    jour

  • DOI
    10.1109/JSEN.2002.800287
  • Filename
    1021056