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Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers

Covalently tethered bichromophores provide an ideal proving ground to develop strategies for controlling excited state behavior in chromophore assemblies. In this work, optical spectroscopy and electronic structure theory are combined to demonstrate that the oxidation state of a sulfur linker betwee...

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Autores principales: Cruz, Chad D., Yuan, Jennifer, Climent, Clàudia, Tierce, Nathan T., Christensen, Peter R., Chronister, Eric L., Casanova, David, Wolf, Michael O., Bardeen, Christopher J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6713866/
https://www.ncbi.nlm.nih.gov/pubmed/31489171
http://dx.doi.org/10.1039/c8sc05598j
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author Cruz, Chad D.
Yuan, Jennifer
Climent, Clàudia
Tierce, Nathan T.
Christensen, Peter R.
Chronister, Eric L.
Casanova, David
Wolf, Michael O.
Bardeen, Christopher J.
author_facet Cruz, Chad D.
Yuan, Jennifer
Climent, Clàudia
Tierce, Nathan T.
Christensen, Peter R.
Chronister, Eric L.
Casanova, David
Wolf, Michael O.
Bardeen, Christopher J.
author_sort Cruz, Chad D.
collection PubMed
description Covalently tethered bichromophores provide an ideal proving ground to develop strategies for controlling excited state behavior in chromophore assemblies. In this work, optical spectroscopy and electronic structure theory are combined to demonstrate that the oxidation state of a sulfur linker between anthracene chromophores gives control over not only the photophysics but also the photochemistry of the molecules. Altering the oxidation state of the sulfur linker does not change the geometry between chromophores, allowing electronic effects between chromophores to be isolated. Previously, we showed that excitonic states in sulfur-bridged terthiophene dimers were modulated by electronic screening of the sulfur lone pairs, but that the sulfur orbitals were not directly involved in these states. In the bridged anthracene dimers that are the subject of the current paper, the atomic orbitals of the unoxidized S linker can actively mix with the anthracene molecular orbitals to form new electronic states with enhanced charge transfer character, different excitonic coupling, and rapid (sub-nanosecond) intersystem crossing that depends on solvent polarity. However, the fully oxidized SO(2) bridge restores purely through-space electronic coupling between anthracene chromophores and inhibits intersystem crossing. Photoexcitation leads to either internal conversion on a sub-20 picosecond timescale, or to the creation of a long-lived emissive state that is the likely precursor of the intramolecular [4 + 4] photodimerization. These results illustrate how chemical modification of a single atom in the covalent bridge can dramatically alter not only the photophysics but also the photochemistry of molecules.
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spelling pubmed-67138662019-09-05 Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers Cruz, Chad D. Yuan, Jennifer Climent, Clàudia Tierce, Nathan T. Christensen, Peter R. Chronister, Eric L. Casanova, David Wolf, Michael O. Bardeen, Christopher J. Chem Sci Chemistry Covalently tethered bichromophores provide an ideal proving ground to develop strategies for controlling excited state behavior in chromophore assemblies. In this work, optical spectroscopy and electronic structure theory are combined to demonstrate that the oxidation state of a sulfur linker between anthracene chromophores gives control over not only the photophysics but also the photochemistry of the molecules. Altering the oxidation state of the sulfur linker does not change the geometry between chromophores, allowing electronic effects between chromophores to be isolated. Previously, we showed that excitonic states in sulfur-bridged terthiophene dimers were modulated by electronic screening of the sulfur lone pairs, but that the sulfur orbitals were not directly involved in these states. In the bridged anthracene dimers that are the subject of the current paper, the atomic orbitals of the unoxidized S linker can actively mix with the anthracene molecular orbitals to form new electronic states with enhanced charge transfer character, different excitonic coupling, and rapid (sub-nanosecond) intersystem crossing that depends on solvent polarity. However, the fully oxidized SO(2) bridge restores purely through-space electronic coupling between anthracene chromophores and inhibits intersystem crossing. Photoexcitation leads to either internal conversion on a sub-20 picosecond timescale, or to the creation of a long-lived emissive state that is the likely precursor of the intramolecular [4 + 4] photodimerization. These results illustrate how chemical modification of a single atom in the covalent bridge can dramatically alter not only the photophysics but also the photochemistry of molecules. Royal Society of Chemistry 2019-06-17 /pmc/articles/PMC6713866/ /pubmed/31489171 http://dx.doi.org/10.1039/c8sc05598j Text en This journal is © The Royal Society of Chemistry 2019 https://creativecommons.org/licenses/by/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Cruz, Chad D.
Yuan, Jennifer
Climent, Clàudia
Tierce, Nathan T.
Christensen, Peter R.
Chronister, Eric L.
Casanova, David
Wolf, Michael O.
Bardeen, Christopher J.
Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers
title Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers
title_full Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers
title_fullStr Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers
title_full_unstemmed Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers
title_short Using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers
title_sort using sulfur bridge oxidation to control electronic coupling and photochemistry in covalent anthracene dimers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6713866/
https://www.ncbi.nlm.nih.gov/pubmed/31489171
http://dx.doi.org/10.1039/c8sc05598j
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