Literature DB >> 18564833

Efficient computational methods for accurately predicting reduction potentials of organic molecules.

Amy L Speelman1, Jason G Gillmore.   

Abstract

A simple computational approach for predicting ground-state reduction potentials based upon gas phase geometry optimizations at a moderate level of density functional theory followed by single-point energy calculations at higher levels of theory in the gas phase or with polarizable continuum solvent models is described. Energies of the gas phase optimized geometries of the S0 and one-electron-reduced D0 states of 35 planar aromatic organic molecules spanning three distinct families of organic photooxidants are computed in the gas phase as well as well in implicit solvent with IPCM and CPCM solvent models. Correlation of the D0 - S0 energy difference (essentially an electron affinity) with experimental reduction potentials from the literature (in acetonitrile vs SCE) within a single family, or across families when solvent models are used, yield correlations with r(2) values in excess of 0.97 and residuals of about 100 mV or less, without resorting to computationally expensive vibrational calculations or thermodynamic cycles.

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Year:  2008        PMID: 18564833     DOI: 10.1021/jp800782e

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  3 in total

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3.  Linear correlation models for the redox potential of organic molecules in aqueous solutions.

Authors:  Jessica C Ortiz-Rodríguez; Juan A Santana; Dalvin D Méndez-Hernández
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  3 in total

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