Cargando…

Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity

Due its complementary absorptions in the range of 450 and 600 nm, an energy‐donating hexaaryl‐subporphyrazine has been linked to a pentacene dimer, which acts primarily as an energy acceptor and secondarily as a singlet fission enabler. In the corresponding conjugate, efficient intramolecular Förste...

Descripción completa

Detalles Bibliográficos
Autores principales: Guzmán, David, Papadopoulos, Ilias, Lavarda, Giulia, Rami, Parisa R., Tykwinski, Rik R., Rodríguez‐Morgade, M. Salomé, Guldi, Dirk M., Torres, Tomás
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7839765/
https://www.ncbi.nlm.nih.gov/pubmed/33002284
http://dx.doi.org/10.1002/anie.202011197
_version_ 1783643451573665792
author Guzmán, David
Papadopoulos, Ilias
Lavarda, Giulia
Rami, Parisa R.
Tykwinski, Rik R.
Rodríguez‐Morgade, M. Salomé
Guldi, Dirk M.
Torres, Tomás
author_facet Guzmán, David
Papadopoulos, Ilias
Lavarda, Giulia
Rami, Parisa R.
Tykwinski, Rik R.
Rodríguez‐Morgade, M. Salomé
Guldi, Dirk M.
Torres, Tomás
author_sort Guzmán, David
collection PubMed
description Due its complementary absorptions in the range of 450 and 600 nm, an energy‐donating hexaaryl‐subporphyrazine has been linked to a pentacene dimer, which acts primarily as an energy acceptor and secondarily as a singlet fission enabler. In the corresponding conjugate, efficient intramolecular Förster resonance energy transfer (i‐FRET) is the modus operandi to transfer energy from the subporphyrazine to the pentacene dimer. Upon energy transfer, the pentacene dimer undergoes intramolecular singlet fission (i‐SF), that is, converting the singlet excited state, via an intermediate state, into a pair of correlated triplet excited states. Solvatochromic fluorescence of the subporphyrazine is a key feature of this system and features a red‐shift as large as 20 nm in polar media. Solvent is thus used to modulate spectral overlap between the fluorescence of subporphyrazine and absorption of the pentacene dimer, which controls the Förster rate constant, on one hand, and the triplet quantum yield, on the other hand. The optimum spectral overlap is realized in xylene, leading to Förster rate constant of 3.52×10(11) s(−1) and a triplet quantum yield of 171 % ±10 %. In short, the solvent polarity dependence, which is a unique feature of subporphyrazines, is decisive in terms of adjusting spectral overlap, ensuring a sizable Förster rate constant, and maximizing triplet quantum yields. Uniquely, this optimization can be achieved without a need for synthetic modification of the subporphyrazine donor.
format Online
Article
Text
id pubmed-7839765
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-78397652021-02-02 Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity Guzmán, David Papadopoulos, Ilias Lavarda, Giulia Rami, Parisa R. Tykwinski, Rik R. Rodríguez‐Morgade, M. Salomé Guldi, Dirk M. Torres, Tomás Angew Chem Int Ed Engl Research Articles Due its complementary absorptions in the range of 450 and 600 nm, an energy‐donating hexaaryl‐subporphyrazine has been linked to a pentacene dimer, which acts primarily as an energy acceptor and secondarily as a singlet fission enabler. In the corresponding conjugate, efficient intramolecular Förster resonance energy transfer (i‐FRET) is the modus operandi to transfer energy from the subporphyrazine to the pentacene dimer. Upon energy transfer, the pentacene dimer undergoes intramolecular singlet fission (i‐SF), that is, converting the singlet excited state, via an intermediate state, into a pair of correlated triplet excited states. Solvatochromic fluorescence of the subporphyrazine is a key feature of this system and features a red‐shift as large as 20 nm in polar media. Solvent is thus used to modulate spectral overlap between the fluorescence of subporphyrazine and absorption of the pentacene dimer, which controls the Förster rate constant, on one hand, and the triplet quantum yield, on the other hand. The optimum spectral overlap is realized in xylene, leading to Förster rate constant of 3.52×10(11) s(−1) and a triplet quantum yield of 171 % ±10 %. In short, the solvent polarity dependence, which is a unique feature of subporphyrazines, is decisive in terms of adjusting spectral overlap, ensuring a sizable Förster rate constant, and maximizing triplet quantum yields. Uniquely, this optimization can be achieved without a need for synthetic modification of the subporphyrazine donor. John Wiley and Sons Inc. 2020-11-18 2021-01-18 /pmc/articles/PMC7839765/ /pubmed/33002284 http://dx.doi.org/10.1002/anie.202011197 Text en © 2020 The Authors. Angewandte Chemie International Edition published by Wiley-VCH GmbH This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Guzmán, David
Papadopoulos, Ilias
Lavarda, Giulia
Rami, Parisa R.
Tykwinski, Rik R.
Rodríguez‐Morgade, M. Salomé
Guldi, Dirk M.
Torres, Tomás
Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity
title Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity
title_full Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity
title_fullStr Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity
title_full_unstemmed Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity
title_short Controlling Intramolecular Förster Resonance Energy Transfer and Singlet Fission in a Subporphyrazine–Pentacene Conjugate by Solvent Polarity
title_sort controlling intramolecular förster resonance energy transfer and singlet fission in a subporphyrazine–pentacene conjugate by solvent polarity
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7839765/
https://www.ncbi.nlm.nih.gov/pubmed/33002284
http://dx.doi.org/10.1002/anie.202011197
work_keys_str_mv AT guzmandavid controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity
AT papadopoulosilias controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity
AT lavardagiulia controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity
AT ramiparisar controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity
AT tykwinskirikr controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity
AT rodriguezmorgademsalome controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity
AT guldidirkm controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity
AT torrestomas controllingintramolecularforsterresonanceenergytransferandsingletfissioninasubporphyrazinepentaceneconjugatebysolventpolarity