Competition between excited state proton and OH- transport via a short water wire: Solvent effects open the gate

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Abstract

We investigate the acid-base proton exchange reaction in a microsolvated bifunctional chromophore by means of quantum chemical calculations. The UV/vis spectroscopy shows that equilibrium of the keto-and enol-forms in the electronic ground state is shifted to the keto conformation in the excited state. A previously unknown mechanism involving a hydroxide ion transport along a short water wire is characterized energetically, which turns out to be competitive with the commonly assumed proton transport. Both mechanisms are shown to have a concerted character, as opposed to a step-wise mechanism. The alternative mechanism of a hydrogen atom transport is critically examined, and evidence for strong solvent dependence is presented. Specifically, we observe electrostatic destabilization of the corresponding πσ* state by the aqueous solvent. As a consequence, no conical intersections are found along the reaction pathway. © 2014 The Owner Societies.

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Bekçioǧlu, G., Allolio, C., Ekimova, M., Nibbering, E. T. J., & Sebastiani, D. (2014). Competition between excited state proton and OH- transport via a short water wire: Solvent effects open the gate. Physical Chemistry Chemical Physics, 16(26), 13047–13051. https://doi.org/10.1039/c4cp00970c

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