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  Protonation-State-Driven Photophysics in Phenothiazinium Dyes: Intersystem Crossing and Singlet-Oxygen Production

Rodriguez-Serrano, A., Daza, M. C., Doerr, M., Tatchen, J., & Marian, C. M. (2017). Protonation-State-Driven Photophysics in Phenothiazinium Dyes: Intersystem Crossing and Singlet-Oxygen Production. ChemPhotoChem, 1(10), 459-469. doi:10.1002/cptc.201700069.

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 Creators:
Rodriguez-Serrano, Angela1, 2, Author           
Daza, Martha C.2, Author
Doerr, Markus2, Author
Tatchen, Jörg3, Author           
Marian, Christel M.4, Author
Affiliations:
1Research Department Thiel, Max-Planck-Institut für Kohlenforschung, Max Planck Society, ou_1445590              
2Grupo de Bioquímica Teórica Universidad Industrial de Santander Carrera 27, Calle 9, Bucaramanga (Colombia, ou_persistent22              
3Research Group Sánchez-García, Max-Planck-Institut für Kohlenforschung, Max Planck Society, ou_1950289              
4Institute of Theoretical and Computational Chemistry, Heinrich-Heine-Universität Düsseldorf, Universitätsstr. 1, 40225 Düsseldorf, Germany, ou_persistent22              

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Free keywords: density functional calculations; intersystem crossing; multireference interaction methods; phenithiazinium dyes; singlet oxygen
 Abstract: The impact of altering the solvent pH value on the photodynamic activity of thionine has been studied computationally by means of density functional theory and multi‐reference interaction methods. To this end, we have investigated the electronic structure of the ground and excited states of diprotonated (TH22+) and neutral imine (T) forms of thionine (TH+). It is well known experimentally that the T1 state of TH+ undergoes acid–base equilibrium reactions resulting in a pronounced pH effect for the efficiency of singlet‐oxygen (1O2) production. Our results show that the energy‐transfer reactions from the T1 state of TH22+ and T to 3O2 correspond to reversible equilibrium processes, whereas in TH+ this process is very exothermic in a vacuum (−0.66 eV) and in aqueous solution (−0.49 eV). These facts explain the experimental observation of a much smaller efficiency of 1O2 production for TH22+ than for TH+. Moreover, we found that the pH value significantly effected the intersystem crossing (ISC) kinetics impacting the concentration of triplet‐state species available for energy transfer. In very acidic aqueous solution (pH<2) where TH22+ is the prevailing species, the ISC proceeds with a rate constant of ≈108 s−1. In a basic medium where T is the dominant species, ISC decay occurs by means of a thermally activated channel (≈108 s−1) which competes with fluorescence (5.32×107 s−1). According to these results, maximum ISC efficiency is expected for intermediate acidic pH values (TH+, ≈109 s−1).

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Language(s): eng - English
 Dates: 2017-07-052017-04-252017-07-062017-10-01
 Publication Status: Published online
 Pages: 11
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1002/cptc.201700069
 Degree: -

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Title: ChemPhotoChem
Source Genre: Journal
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Publ. Info: Weinheim : Wiley-VCH
Pages: - Volume / Issue: 1 (10) Sequence Number: - Start / End Page: 459 - 469 Identifier: ISSN: 2367-0932
CoNE: https://pure.mpg.de/cone/journals/resource/2367-0932