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A DFT study on the mechanism of photoselective catalytic reduction of 4-bromobenzaldehyde in different solvents employing an OH-defected TiO cluster model. | LitMetric

A DFT study on the mechanism of photoselective catalytic reduction of 4-bromobenzaldehyde in different solvents employing an OH-defected TiO cluster model.

Phys Chem Chem Phys

Key Laboratory of Theoretical Chemistry of Environment, Ministry of Education; School of Chemistry & Environment, South China Normal University, Guangzhou, 510006, China.

Published: October 2017

Density functional theory calculations are employed to study the mechanism of photoselective catalytic reduction of 4-bromobenzaldehyde (4-BBA) in acetonitrile and in ethanol solvents. A totally relaxed TiOH cluster model is proposed to represent titanium dioxide (TiO) surfaces. The reduction selectivity of an adsorbed 4-BBA molecule on TiOH has been investigated. Owing to the difference in the proton and H atom donating capabilities between explicit CHCN and CHOH solvent molecules, the photocatalytic reduction of 4-BBA is the debromination process in acetonitrile, whereas in ethanol it is the carbonyl reduction process. Therefore 4-BBA can be selectively reduced to benzaldehyde in acetonitrile and 4-bromobenzyl alcohol in ethanol, respectively. Our computational results have verified the reaction mechanism proposed by experiments and show that the debromination of 4-BBA would be efficient if both 4-BBA and TiOH have an extra photoelectron. The TiOH cluster, playing a role as a hydrogen source and a bridge to transfer photoelectrons from bulk TiO, would have potential to be an ideal molecular model for understanding photocatalytic reactions on the TiO surface.

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Source
http://dx.doi.org/10.1039/c7cp04366jDOI Listing

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