• DocumentCode
    1351981
  • Title

    Enhancement of Ethanol Sensing Properties by Impregnating Platinum on Surface of ZnO Tetrapods

  • Author

    Hongsith, Niyom ; Choopun, Supab

  • Author_Institution
    Dept. of Physic & Mater. Sci., Chiang Mai Univ., Chiang Mai, Thailand
  • Volume
    10
  • Issue
    1
  • fYear
    2010
  • Firstpage
    34
  • Lastpage
    38
  • Abstract
    ZnO tetrapods with a cross-sectional size of about 200-1000 nm were synthesized via an oxidation reaction technique. The sensors based on ZnO tetrapods and platinum impregnated ZnO tetrapods were fabricated and investigated for ethanol sensing properties. The gas sensing properties of the sensors were investigated for ethanol concentration of 50-1000 ppm at different operating temperatures. It was found that the sensitivities of platinum impregnated ZnO tetrapod sensors were higher than that of pure ZnO tetrapod sensors. The enhancement of sensitivity due to platinum impregnation to ZnO tetrapods may be explained either by an increase of adsorbed oxygen density or an increase of reaction rate coefficient in a rate equation for an ethanol adsorption reaction on the ZnO surface. Also, the slope value of the plot between log(S-1) and logC suggested that adsorbed oxygen ion species at the surface of the platinum impregnated ZnO tetrapods was O 2- which was the same as pure ZnO tetrapods. Finally, these results have an important implication for a development of ethanol sensors based on metal oxide semiconductors for alcohol breath analyzers.
  • Keywords
    II-VI semiconductors; adsorption; gas sensors; oxidation; platinum; wide band gap semiconductors; zinc compounds; ZnO tetrapod; ZnO-Pt; adsorption reaction; alcohol breath analyzer; ethanol sensing property; gas sensing property; metal oxide semiconductor; operating temperature; oxidation reaction technique; platinum impregnation; reaction rate coefficient; Delay; Ethanol; Gas detectors; Gold; Nanoparticles; Oxidation; Platinum; Surface morphology; Temperature sensors; Zinc oxide; Gas sensor; ZnO; sensitivity; thermal oxidation;
  • fLanguage
    English
  • Journal_Title
    Sensors Journal, IEEE
  • Publisher
    ieee
  • ISSN
    1530-437X
  • Type

    jour

  • DOI
    10.1109/JSEN.2009.2035746
  • Filename
    5350912