A quantum chemical investigation of the electronic structure of thionine
| dc.contributor.author | Rodriguez-Serrano, Angela | |
| dc.contributor.author | Daza, Martha C. | |
| dc.contributor.author | Doerr, Markus | |
| dc.contributor.author | Marianc, Christel M. | |
| dc.date.accessioned | 2020-02-18T13:33:17Z | |
| dc.date.available | 2020-02-18T13:33:17Z | |
| dc.date.issued | 2012-02-01 | |
| dc.description.abstract | We have examined the electronic and molecular structure of 3,7-diaminophenothiazin-5-ium dye (thionine) in the electronic ground state and in the lowest excited states. The electronic structure was calculated using a combination of density functional theory and multi-reference configuration interaction (DFT/MRCI). Equilibrium geometries were optimized employing (time-dependent) density functional theory (B3LYP functional) combined with the TZVP basis set. Solvent effects were estimated using the COSMO model and micro-hydration with up to five explicit water molecules. Our calculated electronic energies are in good agreement with experimental data. We find the lowest excited singlet and triplet states at the ground state geometry to be of p→p* (S1, S2, T1, T2) and n→p* (S3, T3) character. This order changes when the molecular structure in the electronically excited states is relaxed. Geometry relaxation has almost no effect on the energy of the S1 and T1 states (~0.02 eV). The relaxation effects on the energies of S2 and T2 are moderate (0.14–0.20 eV). The very small emission energy results in a very low fluorescence rate.While we were not able to locate the energetic minimum of the S3 state, we found a non-planar minimum for the T3 state with an energy which is very close to the energy of the S1 minimum in the gas phase (0.04 eV above). When hydration effects are taken into account, the n→p* states S3 and T3 are strongly blueshifted (0.33 and 0.46 eV), while the p→p* states are only slightly affected (<0.06 eV). | spa |
| dc.description.domain | http://unidadinvestigacion.usta.edu.co | spa |
| dc.format.mimetype | application/pdf | |
| dc.identifier.doi | https://doi.org/10.1039/C1PP05267E | spa |
| dc.identifier.uri | http://hdl.handle.net/11634/21755 | |
| dc.publisher.branch | CRAI-USTA Bogotá | spa |
| dc.relation.references | J. P. Tardivo, A. Del Giglio, C. Santos de Oliveira, D. Santesso Gabrielli, H. Couto Junqueira, D. Batista Tadab, D. Severino, R. de Fatima Turchiello andM. S. Baptista,Methylene blue in photodynamic therapy: From basic mechanisms to clinical applications, Photodiagn. Photodyn. Ther., 2005, 2, 175. | spa |
| dc.relation.references | D. Gabrielli, E. Belisle, D. Severino, A. J. Kowaltowski and M. S. Baptista, Binding, aggregation and photochemical properties of methylene blue in mitochondrial suspensions, Photochem. Photobiol., 2004, 79, 227. | spa |
| dc.relation.references | T. Ohsaka, K. Tanaka and K. Tokuda, Electrocatalysis of poly(thionine)-modified electrodes for oxidation of reduced nicotinamide adenine dinucleotide, J. Chem. Soc., Chem. Commun., 1993, 222. | spa |
| dc.relation.references | K. Tanaka, S. Ikeda, N. Oyama, K. Tokuda and T. Ohsaka, Preparation of Poly(thionine)-Modified Electrode and Its Application to an Electrochemical Detector for the Flow-Injection Analysis of NADH, Anal. Sci., 1993, 9, 783. | spa |
| dc.relation.references | M. G. Neumann and M. R. Rodrigues, The mechanism of the photoinitiation of the polymerization of MMA by the thioninetriethanolamine system, Polymer, 1998, 39, 1657. | spa |
| dc.relation.references | V. Svoboda, M. J. Cooney, C. Rippolz and B. Y. Liaw, In situ characterization of electrochemical polymerization of methylene green on platinum electrodes, J. Electrochem. Soc., 2007, 154, D113. | spa |
| dc.relation.references | M. Wainwright, H. Mohr and W. H. Walker, Phenothiazinium derivatives for pathogen inactivation in blood products, J. Photochem. Photobiol., B, 2007, 86, 45. | spa |
| dc.relation.references | E.M. Tuite and J.M.Kelly, Photochemical reactions of methylene blue and analogues withDNAand other biological substrates, J. Photochem. Photobiol., B, 1993, 21, 103. | spa |
| dc.relation.references | M.Wainwright, D. A. Phoenix, J. Marland, D. R. A.Wareing and F. J. Bolton, A study of photobactericidal activity in the phenothiazinium series, FEMS Immunol. Med. Microbiol., 1997, 19, 75. | spa |
| dc.relation.references | M. Wainwright, The development of phenothiazinium photosensitisers, Photodiagn. Photodyn. Ther., 2005, 2, 263. | spa |
| dc.relation.references | D. A. Phoenix, Z. Sayed, S. Hussain, F.Harris and M.Wainwright, The phototoxicity of phenothiazinium derivatives against Escherichia coli and Staphylococcus aureus, FEMS Immunol. Med. Microbiol., 2003, 39, 17. | spa |
| dc.relation.references | M. Wainwright, D. A. Phoenix, S. L. Laycock, D. R. Wareing and P. A. Wright, Photobactericidal activity of phenothiazinium dyes against methicillin-resistant strains of Staphylococcus aureus, FEMS Microbiol. Lett., 1998, 160, 177. | spa |
| dc.relation.references | J. W. Foley, X. Song, T. N. Demidova, F. Jalil and M. R. Hamblin, Synthesis and Properties of Benzo[a]phenoxazinium Chalcogen Analogues as Novel Broad-Spectrum Antimicrobial Photosensitizers, J. Med. Chem., 2006, 49, 5291. | spa |
| dc.relation.references | M. Wainwright, Photodynamic antimicrobial chemotherapy (PACT), J. Antimicrob. Chemother., 1998, 42, 13. | spa |
| dc.relation.references | J. P. Thurston, The chemotherapy of Plasmodium berghei. I. Resistance to drugs, Parasitology, 1953, 43, 246. | spa |
| dc.relation.references | C. Boda, B. Enanga, B. Courtioux, J. C. Breton and B. Bouteille, Trypanocidal activity of methylene blue. Evidence for in vitro efficacy and in vivo failure, Chemotherapy, 2006, 52, 16. | spa |
| dc.relation.references | B. B. Bhowmik and M. Mukhopadhyay, Photoelectrochemical studies of thionine dye in aqueous surfactant solution, J. Photochem. Photobiol., A, 1994, 78, 173. | spa |
| dc.relation.references | C. SenVarma and B. B. Bhowmik, Photoinduced interaction of thionine with phospholipid and cholesterol in artificial membranes, J. Photochem. Photobiol., B, 1991, 8, 295. | spa |
| dc.relation.references | E. Rabinowitch, The photogalvanic effect I: the photochemical properties of the thionine-iron system, J. Chem. Phys., 1940, 8, 551. | spa |
| dc.relation.references | E. Rabinowitch, The photogalvanic effect II: the photogalvanic properties of the thionine-iron system, J. Chem. Phys., 1940, 8, 560. | spa |
| dc.rights | Atribución-NoComercial-CompartirIgual 2.5 Colombia | |
| dc.rights.uri | http://creativecommons.org/licenses/by-nc-sa/2.5/co/ | |
| dc.subject.keyword | Electronic | spa |
| dc.subject.keyword | Structure | spa |
| dc.subject.keyword | Thionine | spa |
| dc.subject.keyword | Chemical | spa |
| dc.title | A quantum chemical investigation of the electronic structure of thionine | spa |
| dc.type.category | Generación de Nuevo Conocimiento: Artículos publicados en revistas especializadas - Electrónicos | spa |

