Why is anatase a better photocatalyst than rutile? - Model studies on epitaxial TiO2 films
Почему анатаз лучше фотокатализатор, чем рутил? Модельные исследования эпитаксиальных пленок TiO2
2014-02-10
SCID: 54.1/4qd6ca8b
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TiO2 polymorphsanataseanisotropic charge carrier mobilitycharge carrier diffusionepitaxial TiO2 filmsexciton bulk transportfilm thickness dependencephotocatalytic activityrutilesurface orientation dependence
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Abstract (AI)
The prototypical photocatalyst TiO2 exists in different polymorphs, the most common forms are the anatase- and rutile-crystal structures. Generally, anatase is more active than rutile, but no consensus exists to explain this difference. Here we demonstrate that it is the bulk transport of excitons to the surface that contributes to the difference. Utilizing high -quality epitaxial TiO2 films of the two polymorphs we evaluate the photocatalytic activity as a function of TiO2-film thickness. For anatase the activity increases for films up to ~5 nm thick, while rutile films reach their maximum activity for ~2.5 nm films already. This shows that charge carriers excited deeper in the bulk contribute to surface reactions in anatase than in rutile. Furthermore, we measure surface orientation dependent activity on rutile single crystals. The pronounced orientation-dependent activity can also be correlated to anisotropic bulk charge carrier mobility, suggesting general importance of bulk charge diffusion for explaining photocatalytic anisotropies.
Key Findings
1
Anatase TiO2 shows increasing photocatalytic activity with film thickness up to ~5 nm, indicating deeper bulk exciton contribution to surface reactions.
2
Bulk transport of excitons/charge carriers to the surface is a key factor explaining why anatase is a better photocatalyst than rutile.
3
Rutile TiO2 reaches maximal photocatalytic activity already at ~2.5 nm film thickness, implying shorter effective exciton/charge transport lengths.
4
Surface-orientation-dependent activity on rutile single crystals correlates with anisotropic bulk charge carrier mobility, highlighting bulk diffusion's role in photocatalytic anisotropies.
Research Object
High-quality epitaxial TiO2 films of the anatase and rutile polymorphs
Research Subject
Thickness- and orientation-dependent photocatalytic activity driven by bulk exciton/charge-carrier transport (bulk diffusion to the surface) comparing anatase versus rutile
Publication Details
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2014-02-10
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