Chemical Dynamics of the First Proton-Coupled Electron Transfer of Water Oxidation on TiO Anatase.

Titanium dioxide (TiO) is a prototype, water-splitting (photo)catalyst, but its performance is limited by the large overpotential for the oxygen evolution reaction (OER). We report here a first-principles density functional theory study of the chemical dynamics of the first proton-coupled electron t...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 135; no. 50; pp. 18774 - 18778
Autores principales: Jia Chen, Ye-Fei Li, Sit, Patrick, Selloni, Annabella
Formato: Artículo
Publicado: American Chemical Society 12/18/2013
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:Titanium dioxide (TiO) is a prototype, water-splitting (photo)catalyst, but its performance is limited by the large overpotential for the oxygen evolution reaction (OER). We report here a first-principles density functional theory study of the chemical dynamics of the first proton-coupled electron transfer (PCET), which is considered responsible for the large OER overpotential on TiO. We use a periodic model of the TiO/water interface that includes a slab of anatase TiO and explicit water molecules, sample the solvent configurations by first principles molecular dynamics, and determine the energy profiles of the two electronic states involved in the electron transfer (ET) by hybrid functional calculations. Our results suggest that the first PCET is sequential, with the ET following the proton transfer. The ET occurs via an inner sphere process, which is facilitated by a state in which one electronic hole is shared by the two oxygen ions involved in the transfer.