We investigate the effect of fluorine doping on the optical spectra of stoichiometric and reduced TiO 2 anatase, brookite, and rutile using density functional methods. The present approach is able to reproduce the main features of experiments and high-level quasiparticle calculations for undoped titania but at a much lower computational cost, thus allowing the study of doped titania, which requires large supercells. Whereas the simulated spectra of F-substituted brookite and rutile do not show any significant new feature, a relatively intense new band near the visible region is predicted for F-substituted anatase. This allows one to suggest assigning the spectral features near the visible region, observed on multiphase F-doped titania samples, to the presence of anatase. The physical origin of the new absorption band in F-doped anatase is unambiguously attributed to the presence of Ti 3+ centers. © 2012 American Chemical Society.

Tosoni, S., Fernandez Hevia, D., González Díaz, Ó., Illas, F. (2012). Origin of optical excitations in fluorine-doped titania from response function theory: Relevance to photocatalysis. THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 3(16), 2269-2274 [10.1021/jz300870f].

Origin of optical excitations in fluorine-doped titania from response function theory: Relevance to photocatalysis

TOSONI, SERGIO PAOLO
Primo
;
2012

Abstract

We investigate the effect of fluorine doping on the optical spectra of stoichiometric and reduced TiO 2 anatase, brookite, and rutile using density functional methods. The present approach is able to reproduce the main features of experiments and high-level quasiparticle calculations for undoped titania but at a much lower computational cost, thus allowing the study of doped titania, which requires large supercells. Whereas the simulated spectra of F-substituted brookite and rutile do not show any significant new feature, a relatively intense new band near the visible region is predicted for F-substituted anatase. This allows one to suggest assigning the spectral features near the visible region, observed on multiphase F-doped titania samples, to the presence of anatase. The physical origin of the new absorption band in F-doped anatase is unambiguously attributed to the presence of Ti 3+ centers. © 2012 American Chemical Society.
Articolo in rivista - Articolo scientifico
Materials Science (all)
English
2012
3
16
2269
2274
none
Tosoni, S., Fernandez Hevia, D., González Díaz, Ó., Illas, F. (2012). Origin of optical excitations in fluorine-doped titania from response function theory: Relevance to photocatalysis. THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 3(16), 2269-2274 [10.1021/jz300870f].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/78455
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