Effect of compressive stress inducing a band gap narrowing on the photoinduced activities of sol-gel TiO2 films

Ghazzal, Mohamed N.;Chaoui, N.;Genet, Michel;Gaigneaux, Eric;Robert, D.
(2011) Thin Solid Films — Vol. 520, p. 1147-1154 (2011)

Files

ghazzal-thinsolidfilms2011.pdf
  • Open Access
  • Adobe PDF
  • 1.07 MB

Details

Authors
  • Ghazzal, Mohamed N.UCLouvain
    Author
  • Chaoui, N.Université Paul Verlaine de Metz
    Author
  • Genet, MichelUCLouvain
    Author
  • Author
  • Robert, D.Université Paul Verlaine de Metz
    Author
Abstract
TiO2 thin films grown on different kinds of substrates were obtained by sol–gel process. X-ray diffraction revealed that the TiO2 lattice parameter c decreased continuously, indicating a continuous variation in the compressive stress, a negligible compressive stress of the film grown onto Soda-Lime Glass (SLG), medium compressive stress of the film grown onto BoroSilicate Glass (BSG) and large compressive stress of the film deposited onto the Quartz Substrate (QS). UV–Vis absorbance spectra exhibited a red-shift of the absorbance edge of the TiO2 films suggesting a lowering of the band gap, which is a direct consequence of the increase of the compressive stress. X-ray photoelectron spectroscopy revealed that the surface composition of titania films was similar except for sodium-ion concentration. The rate observed during the photo-oxydation of the stearic acid on TiO2/QS was twice as high as that of TiO2/BSG and about 1000 times superior to that of TiO2/SLG. The photoinduced wettability shows an identical dependence of the compressive stress. According to these results, the compressive stress could be used to tune the band gap of the titanium oxide in order to enhance the photoinduced properties.
Affiliations

Citations

Ghazzal, M. N., Chaoui, N., Genet, M., Gaigneaux, E., & Robert, D. (2011). Effect of compressive stress inducing a band gap narrowing on the photoinduced activities of sol-gel TiO2 films. Thin Solid Films, 520, 1147-1154. https://doi.org/10.1016/j.tsf.2011.08.097 (Original work published 2011)