Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity

Autores
Maisuls, Iván; Wolcan, Ezequiel; David Gara, Pedro Maximiliano; Cabrerizo, Franco Martín; Ferraudi, Guillermo; Ruiz, Gustavo Teodosio
Año de publicación
2021
Idioma
inglés
Tipo de recurso
artículo
Estado
versión publicada
Descripción
The photochemical and photophysical properties of a Re(I) tricarbonyl complex, ClRe(CO)3(nHo)2, where nHo = 9H-pyrido[3,4-b] indole (norharmane), were investigated in solution phase by a combination of steady state emission spectroscopy, laser flash photolysis (LFP) and pulse radiolysis (PR) techniques. These results allowed us to identify and study the reactivity of the β-carboline (nHo) Rhenium(I) complex main excited states. The absorption spectrum as well as the steady-state and time-resolved luminescence of the complex exhibits a marked dependence with the solvent properties. These experimentally observed results were corroborated by quantum chemical calculations, TD-DFT. The most important electronic transitions present in the spectrum in all solvents are MLLCTRe(CO)3→nHo1, nHo2 along with a mixture of ILnHo and LLCTCl→nHo transitions. The relationship between the dipole moment and the polarity of the solvent was rationalized in terms of the electron density inside and outside the complex. While the luminescence of the complex is mainly attributed to the emitting 1ILnHo state, in LFP experiments a MLCT excited state was also detected. The species generated in either reductive or oxidative conditions in LFP experiments were compared with those obtained in PR. Also, the quenching rate constant (kq) of the excited state with MV+2 was calculated. The excited state of the complex can efficiently generate singlet oxygen in acetonitrile yielding a ΦΔ = 0.25 ± 0.02. Optoacoustic measurements showed that, after photonic excitation, almost all the absorbed energy by the complex is released to the medium as prompt heat. The investigated photophysical and photochemical properties of ClRe(CO)3(nHo)2 are of significant importance in relation to the use of this β-carboline Rhenium(I) complex in several biomedical fields, such as photodynamic therapy and photoactivated chemotherapy as well as new alternative therapies such as regional hyperthermia.
Instituto de Investigaciones Fisicoquímicas Teóricas y Aplicadas
Centro de Investigaciones Ópticas
Materia
Física
Química
Rhenium tricarbonyl complexes
Singlet oxygen generation
Photophysics
Photochemistry
Norharmane – TD-DFT
Pulse radiolysis
Nivel de accesibilidad
acceso abierto
Condiciones de uso
http://creativecommons.org/licenses/by-nc-nd/4.0/
Repositorio
SEDICI (UNLP)
Institución
Universidad Nacional de La Plata
OAI Identificador
oai:sedici.unlp.edu.ar:10915/129911

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oai_identifier_str oai:sedici.unlp.edu.ar:10915/129911
network_acronym_str SEDICI
repository_id_str 1329
network_name_str SEDICI (UNLP)
spelling Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivityMaisuls, IvánWolcan, EzequielDavid Gara, Pedro MaximilianoCabrerizo, Franco MartínFerraudi, GuillermoRuiz, Gustavo TeodosioFísicaQuímicaRhenium tricarbonyl complexesSinglet oxygen generationPhotophysicsPhotochemistryNorharmane – TD-DFTPulse radiolysisThe photochemical and photophysical properties of a Re(I) tricarbonyl complex, ClRe(CO)3(nHo)2, where nHo = 9H-pyrido[3,4-b] indole (norharmane), were investigated in solution phase by a combination of steady state emission spectroscopy, laser flash photolysis (LFP) and pulse radiolysis (PR) techniques. These results allowed us to identify and study the reactivity of the β-carboline (nHo) Rhenium(I) complex main excited states. The absorption spectrum as well as the steady-state and time-resolved luminescence of the complex exhibits a marked dependence with the solvent properties. These experimentally observed results were corroborated by quantum chemical calculations, TD-DFT. The most important electronic transitions present in the spectrum in all solvents are MLLCTRe(CO)3→nHo1, nHo2 along with a mixture of ILnHo and LLCTCl→nHo transitions. The relationship between the dipole moment and the polarity of the solvent was rationalized in terms of the electron density inside and outside the complex. While the luminescence of the complex is mainly attributed to the emitting 1ILnHo state, in LFP experiments a MLCT excited state was also detected. The species generated in either reductive or oxidative conditions in LFP experiments were compared with those obtained in PR. Also, the quenching rate constant (kq) of the excited state with MV+2 was calculated. The excited state of the complex can efficiently generate singlet oxygen in acetonitrile yielding a ΦΔ = 0.25 ± 0.02. Optoacoustic measurements showed that, after photonic excitation, almost all the absorbed energy by the complex is released to the medium as prompt heat. The investigated photophysical and photochemical properties of ClRe(CO)3(nHo)2 are of significant importance in relation to the use of this β-carboline Rhenium(I) complex in several biomedical fields, such as photodynamic therapy and photoactivated chemotherapy as well as new alternative therapies such as regional hyperthermia.Instituto de Investigaciones Fisicoquímicas Teóricas y AplicadasCentro de Investigaciones Ópticas2021info:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionArticulohttp://purl.org/coar/resource_type/c_6501info:ar-repo/semantics/articuloapplication/pdfhttp://sedici.unlp.edu.ar/handle/10915/129911enginfo:eu-repo/semantics/altIdentifier/issn/2666-4690info:eu-repo/semantics/altIdentifier/doi/10.1016/j.jpap.2021.100078info:eu-repo/semantics/openAccesshttp://creativecommons.org/licenses/by-nc-nd/4.0/Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0)reponame:SEDICI (UNLP)instname:Universidad Nacional de La Platainstacron:UNLP2025-09-29T11:32:37Zoai:sedici.unlp.edu.ar:10915/129911Institucionalhttp://sedici.unlp.edu.ar/Universidad públicaNo correspondehttp://sedici.unlp.edu.ar/oai/snrdalira@sedici.unlp.edu.arArgentinaNo correspondeNo correspondeNo correspondeopendoar:13292025-09-29 11:32:38.14SEDICI (UNLP) - Universidad Nacional de La Platafalse
dc.title.none.fl_str_mv Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
title Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
spellingShingle Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
Maisuls, Iván
Física
Química
Rhenium tricarbonyl complexes
Singlet oxygen generation
Photophysics
Photochemistry
Norharmane – TD-DFT
Pulse radiolysis
title_short Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
title_full Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
title_fullStr Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
title_full_unstemmed Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
title_sort Photophysical properties of a β-Carboline Rhenium (I) complex: solvent effects on excited states and their redox reactivity
dc.creator.none.fl_str_mv Maisuls, Iván
Wolcan, Ezequiel
David Gara, Pedro Maximiliano
Cabrerizo, Franco Martín
Ferraudi, Guillermo
Ruiz, Gustavo Teodosio
author Maisuls, Iván
author_facet Maisuls, Iván
Wolcan, Ezequiel
David Gara, Pedro Maximiliano
Cabrerizo, Franco Martín
Ferraudi, Guillermo
Ruiz, Gustavo Teodosio
author_role author
author2 Wolcan, Ezequiel
David Gara, Pedro Maximiliano
Cabrerizo, Franco Martín
Ferraudi, Guillermo
Ruiz, Gustavo Teodosio
author2_role author
author
author
author
author
dc.subject.none.fl_str_mv Física
Química
Rhenium tricarbonyl complexes
Singlet oxygen generation
Photophysics
Photochemistry
Norharmane – TD-DFT
Pulse radiolysis
topic Física
Química
Rhenium tricarbonyl complexes
Singlet oxygen generation
Photophysics
Photochemistry
Norharmane – TD-DFT
Pulse radiolysis
dc.description.none.fl_txt_mv The photochemical and photophysical properties of a Re(I) tricarbonyl complex, ClRe(CO)3(nHo)2, where nHo = 9H-pyrido[3,4-b] indole (norharmane), were investigated in solution phase by a combination of steady state emission spectroscopy, laser flash photolysis (LFP) and pulse radiolysis (PR) techniques. These results allowed us to identify and study the reactivity of the β-carboline (nHo) Rhenium(I) complex main excited states. The absorption spectrum as well as the steady-state and time-resolved luminescence of the complex exhibits a marked dependence with the solvent properties. These experimentally observed results were corroborated by quantum chemical calculations, TD-DFT. The most important electronic transitions present in the spectrum in all solvents are MLLCTRe(CO)3→nHo1, nHo2 along with a mixture of ILnHo and LLCTCl→nHo transitions. The relationship between the dipole moment and the polarity of the solvent was rationalized in terms of the electron density inside and outside the complex. While the luminescence of the complex is mainly attributed to the emitting 1ILnHo state, in LFP experiments a MLCT excited state was also detected. The species generated in either reductive or oxidative conditions in LFP experiments were compared with those obtained in PR. Also, the quenching rate constant (kq) of the excited state with MV+2 was calculated. The excited state of the complex can efficiently generate singlet oxygen in acetonitrile yielding a ΦΔ = 0.25 ± 0.02. Optoacoustic measurements showed that, after photonic excitation, almost all the absorbed energy by the complex is released to the medium as prompt heat. The investigated photophysical and photochemical properties of ClRe(CO)3(nHo)2 are of significant importance in relation to the use of this β-carboline Rhenium(I) complex in several biomedical fields, such as photodynamic therapy and photoactivated chemotherapy as well as new alternative therapies such as regional hyperthermia.
Instituto de Investigaciones Fisicoquímicas Teóricas y Aplicadas
Centro de Investigaciones Ópticas
description The photochemical and photophysical properties of a Re(I) tricarbonyl complex, ClRe(CO)3(nHo)2, where nHo = 9H-pyrido[3,4-b] indole (norharmane), were investigated in solution phase by a combination of steady state emission spectroscopy, laser flash photolysis (LFP) and pulse radiolysis (PR) techniques. These results allowed us to identify and study the reactivity of the β-carboline (nHo) Rhenium(I) complex main excited states. The absorption spectrum as well as the steady-state and time-resolved luminescence of the complex exhibits a marked dependence with the solvent properties. These experimentally observed results were corroborated by quantum chemical calculations, TD-DFT. The most important electronic transitions present in the spectrum in all solvents are MLLCTRe(CO)3→nHo1, nHo2 along with a mixture of ILnHo and LLCTCl→nHo transitions. The relationship between the dipole moment and the polarity of the solvent was rationalized in terms of the electron density inside and outside the complex. While the luminescence of the complex is mainly attributed to the emitting 1ILnHo state, in LFP experiments a MLCT excited state was also detected. The species generated in either reductive or oxidative conditions in LFP experiments were compared with those obtained in PR. Also, the quenching rate constant (kq) of the excited state with MV+2 was calculated. The excited state of the complex can efficiently generate singlet oxygen in acetonitrile yielding a ΦΔ = 0.25 ± 0.02. Optoacoustic measurements showed that, after photonic excitation, almost all the absorbed energy by the complex is released to the medium as prompt heat. The investigated photophysical and photochemical properties of ClRe(CO)3(nHo)2 are of significant importance in relation to the use of this β-carboline Rhenium(I) complex in several biomedical fields, such as photodynamic therapy and photoactivated chemotherapy as well as new alternative therapies such as regional hyperthermia.
publishDate 2021
dc.date.none.fl_str_mv 2021
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info:eu-repo/semantics/publishedVersion
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format article
status_str publishedVersion
dc.identifier.none.fl_str_mv http://sedici.unlp.edu.ar/handle/10915/129911
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language eng
dc.relation.none.fl_str_mv info:eu-repo/semantics/altIdentifier/issn/2666-4690
info:eu-repo/semantics/altIdentifier/doi/10.1016/j.jpap.2021.100078
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
http://creativecommons.org/licenses/by-nc-nd/4.0/
Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0)
eu_rights_str_mv openAccess
rights_invalid_str_mv http://creativecommons.org/licenses/by-nc-nd/4.0/
Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0)
dc.format.none.fl_str_mv application/pdf
dc.source.none.fl_str_mv reponame:SEDICI (UNLP)
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