| Literature DB >> 25169653 |
D Channei1, B Inceesungvorn1, N Wetchakun2, S Ukritnukun3, A Nattestad4, J Chen4, S Phanichphant5.
Abstract
Undoped CeO2 and 0.50-5.00 mol% Fe-doped CeO2 nanoparticles were prepared by a homogeneous precipitation combined with homogeneous/impreganation method, and applied as photocatalyst films prepared by a doctor blade technique. The superior photocatalytic performances of the Fe-doped CeO2 films, compared with undoped CeO2 films, was ascribed mainly to a decrease in band gap energy and an increase in specific surface area of the material. The presence of Fe(3+) as found from XPS analysis, may act as electron acceptor and/or hole donor, facilitating longer lived charge carrier separation in Fe-doped CeO2 films as confirmed by photoluminescence spectroscopy. The 1.50 mol% Fe-doped CeO2 film was found to be the optimal iron doping concentration for MO degradation in this study.Entities:
Year: 2014 PMID: 25169653 PMCID: PMC5385822 DOI: 10.1038/srep05757
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The XPS spectra of 5.00 mol% Fe-doped CeO2 (a) Fe 2p and (b) Ce 3d.
Figure 2XRD patterns of the undoped and Fe-doped CeO2 films fabricated by the doctor blade technique.
Figure 3Schuster-Kubelka-Munk absorption function of Fe–doped CeO2 films with an inset showing the band gap energies of catalyst films.
Figure 4The kinetics plots for pseudo first order reaction of MO decolourisation at pH 5.
Figure 5Cycling runs of MO decolourisation using 1.50 mol% Fe-doped CeO2 film at pH 5 of MO solution.
Figure 6PL spectra of CeO2 at differrent amounts of iron doping level.
Figure 7Fluorescence spectra of a TA–OH solution generated by 1.50 mol% Fe-doped CeO2 under visible light irradiation.
Figure 8Proposed mechanism for the photoexcited electron–hole separation and transport processes at the Fe-doped CeO2 interface under visible light irradiation.