• DocumentCode
    3305916
  • Title

    Inverse Opal Structure of SnO2 and SnO2: Zn for Gas Sensing

  • Author

    Baratto, C. ; Faglia, G. ; Sberveglieri, G. ; Sutti, A. ; Calestani, G. ; Dionigi, C.

  • Author_Institution
    Dept. of Chem. & Phys., CNR-INFM, Brescia
  • fYear
    2005
  • fDate
    Oct. 30 2005-Nov. 3 2005
  • Firstpage
    1196
  • Lastpage
    1200
  • Abstract
    In the present work, we propose a low cost synthetic sol-gel route that allows to produce high quality oxide nanostructures with inverse opal architecture which, transferred on alumina substrates provided with Pt interdigitated contacts and heater, are tested as gas sensing devices. An opal template of sintered monodisperse polystyrene spheres was filled with alcoholic solutions of metal oxide precursors and transferred on the alumina substrate. The polystyrene template was removed by thermal treatment, leading to the simultaneous sintering of the oxide nanoparticles. Beside SnO2, a binary oxide well known for gas sensing application, a Zn containing ternary solid solution (SnO2:Zn, with Zn 10% molar content) was taken into account for sensor preparation. The obtained high quality macro and meso-porous structures, characterized by different techniques, were tested for pollutant (CO, NO2) and interfering (methanol) gases, showing that very good detection can be reached through the increase of surface area offered by the inverse opal structure and the tailoring of the chemical composition. The electrical characterization performed on the tin dioxide based sensors shows an enhancement of the relative response towards NO2 at low temperatures in comparison with conventional SnO2 sensors obtained with sputtering technique. The addition of Zn increases the separation between the operating temperatures for reducing and oxidizing gases and results in a further enhancement of the selectivity to NO2 detection
  • Keywords
    alumina; gas sensors; nanoparticles; nitrogen compounds; polymers; porous materials; sintering; sol-gel processing; tin compounds; zinc; CO; NO2; SnO2:Zn; alumina substrates; gas detection; gas sensing devices; high quality oxide nanostructures; interdigitated contacts; interdigitated heater; inverse opal architecture; inverse opal structure; macro porous structure; meso-porous structure; metal oxide precursors; monodisperse polystyrene spheres; oxide nanoparticles; simultaneous sintering; synthetic sol-gel route; thermal treatment; Chemical sensors; Costs; Gas detectors; Gases; Heat transfer; Nanostructures; Sensor phenomena and characterization; Temperature sensors; Testing; Zinc;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Sensors, 2005 IEEE
  • Conference_Location
    Irvine, CA
  • Print_ISBN
    0-7803-9056-3
  • Type

    conf

  • DOI
    10.1109/ICSENS.2005.1597920
  • Filename
    1597920