Photocatalytic degradation of phenol under both UV radiation and visible light, using TiO2 (Degussa P-25) and TiO2 loaded with some transition metal ions (Co, Cu, Fe and Mo) was examined. From the series of metal loaded catalysts, Mo/TiO2 was the most efficient one. In the presence of Mo, neither TiO2 anatase/rutile fraction nor its pore size diameter has been affected. However. Mo made its surface more acidic. The percentage of phenol degradation reached under visible light was significantly lower than that under UV radiation due to the lower degree of light absorption by the catalyst surface. From the series of studied catalysts, 2 wt% Mo/TiO2 was the most efficient one. The synergetic effect between S-BET, mean pore size diameter, cataly...
Phenol degradation with TiO2 photocatalyst under UV light is known to be an effective method. Under ...
A comparative study of the photodeposition of Pt, Au and Pd under the same experimental conditions o...
Transition metal doping into the TiO2 lattice can expand the response of these metal oxide nano part...
In this work, the response surface methodology was applied as a tool for the optimization of the ope...
This work focuses on the comparative study of physico-chemical and photo-catalytic properties of TiO...
Conventional water purification and disinfection generally involve potentially hazardous substances,...
Conventional water purification and disinfection generally involve potentially hazardous substances,...
Conventional water purification and disinfection generally involve potentially hazardous substances,...
Transition metal ions (M-TiO2, where M = Cu(II), Ni(II), Co(II) and Fe(III)) loaded TiO2 catalyst we...
Due to the toxicity effects and endocrine disrupting properties of phenolic compounds, their removal...
International audiencePhotocatalytic degradation of phenol has been investigated using a laboratory ...
Pt-TiO2 and Au-TiO2 photocatalysts were prepared by noble metal photodeposition on sulfated TiO2. It...
This study developed bandgap energy of TiO2 into the visible region for the photo-activation. The ph...
Mono-doped (Mo-TiO2 and W-TiO2) and co-doped TiO2 (Co-Mo-TiO2, Co-W-TiO2, Cu-Mo- TiO2, Cu-W-TiO2, Z...
Phenol degradation with TiO2 photocatalyst under UV light is known to be an effective method. Under ...
Phenol degradation with TiO2 photocatalyst under UV light is known to be an effective method. Under ...
A comparative study of the photodeposition of Pt, Au and Pd under the same experimental conditions o...
Transition metal doping into the TiO2 lattice can expand the response of these metal oxide nano part...
In this work, the response surface methodology was applied as a tool for the optimization of the ope...
This work focuses on the comparative study of physico-chemical and photo-catalytic properties of TiO...
Conventional water purification and disinfection generally involve potentially hazardous substances,...
Conventional water purification and disinfection generally involve potentially hazardous substances,...
Conventional water purification and disinfection generally involve potentially hazardous substances,...
Transition metal ions (M-TiO2, where M = Cu(II), Ni(II), Co(II) and Fe(III)) loaded TiO2 catalyst we...
Due to the toxicity effects and endocrine disrupting properties of phenolic compounds, their removal...
International audiencePhotocatalytic degradation of phenol has been investigated using a laboratory ...
Pt-TiO2 and Au-TiO2 photocatalysts were prepared by noble metal photodeposition on sulfated TiO2. It...
This study developed bandgap energy of TiO2 into the visible region for the photo-activation. The ph...
Mono-doped (Mo-TiO2 and W-TiO2) and co-doped TiO2 (Co-Mo-TiO2, Co-W-TiO2, Cu-Mo- TiO2, Cu-W-TiO2, Z...
Phenol degradation with TiO2 photocatalyst under UV light is known to be an effective method. Under ...
Phenol degradation with TiO2 photocatalyst under UV light is known to be an effective method. Under ...
A comparative study of the photodeposition of Pt, Au and Pd under the same experimental conditions o...
Transition metal doping into the TiO2 lattice can expand the response of these metal oxide nano part...