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Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings

A modular strategy has been employed to develop a new class of fluorescent molecules, which generates discrete, dimeric stacked fluorophores upon complexation with multiple cucurbit[8]uril macrocycles. The multiple constraints result in a “static” complex (remaining as a single entity for more than...

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Autores principales: Wu, Guanglu, Bae, Youn Jue, Olesińska, Magdalena, Antón-García, Daniel, Szabó, István, Rosta, Edina, Wasielewski, Michael R., Scherman, Oren A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8146025/
https://www.ncbi.nlm.nih.gov/pubmed/34123057
http://dx.doi.org/10.1039/c9sc04587b
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author Wu, Guanglu
Bae, Youn Jue
Olesińska, Magdalena
Antón-García, Daniel
Szabó, István
Rosta, Edina
Wasielewski, Michael R.
Scherman, Oren A.
author_facet Wu, Guanglu
Bae, Youn Jue
Olesińska, Magdalena
Antón-García, Daniel
Szabó, István
Rosta, Edina
Wasielewski, Michael R.
Scherman, Oren A.
author_sort Wu, Guanglu
collection PubMed
description A modular strategy has been employed to develop a new class of fluorescent molecules, which generates discrete, dimeric stacked fluorophores upon complexation with multiple cucurbit[8]uril macrocycles. The multiple constraints result in a “static” complex (remaining as a single entity for more than 30 ms) and facilitate fluorophore coupling in the ground state, showing a significant bathochromic shift in absorption and emission. This modular design is surprisingly applicable and flexible and has been validated through an investigation of nine different fluorophore cores ranging in size, shape, and geometric variation of their clamping modules. All fluorescent dimers evaluated can be photo-excited to atypical excimer-like states with elongated excited lifetimes (up to 37 ns) and substantially high quantum yields (up to 1). This strategy offers a straightforward preparation of discrete fluorophore dimers, providing promising model systems with explicitly stable dimeric structures and tunable photophysical features, which can be utilized to study various intermolecular processes.
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spelling pubmed-81460252021-06-11 Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings Wu, Guanglu Bae, Youn Jue Olesińska, Magdalena Antón-García, Daniel Szabó, István Rosta, Edina Wasielewski, Michael R. Scherman, Oren A. Chem Sci Chemistry A modular strategy has been employed to develop a new class of fluorescent molecules, which generates discrete, dimeric stacked fluorophores upon complexation with multiple cucurbit[8]uril macrocycles. The multiple constraints result in a “static” complex (remaining as a single entity for more than 30 ms) and facilitate fluorophore coupling in the ground state, showing a significant bathochromic shift in absorption and emission. This modular design is surprisingly applicable and flexible and has been validated through an investigation of nine different fluorophore cores ranging in size, shape, and geometric variation of their clamping modules. All fluorescent dimers evaluated can be photo-excited to atypical excimer-like states with elongated excited lifetimes (up to 37 ns) and substantially high quantum yields (up to 1). This strategy offers a straightforward preparation of discrete fluorophore dimers, providing promising model systems with explicitly stable dimeric structures and tunable photophysical features, which can be utilized to study various intermolecular processes. The Royal Society of Chemistry 2019-12-06 /pmc/articles/PMC8146025/ /pubmed/34123057 http://dx.doi.org/10.1039/c9sc04587b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Wu, Guanglu
Bae, Youn Jue
Olesińska, Magdalena
Antón-García, Daniel
Szabó, István
Rosta, Edina
Wasielewski, Michael R.
Scherman, Oren A.
Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings
title Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings
title_full Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings
title_fullStr Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings
title_full_unstemmed Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings
title_short Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings
title_sort controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8146025/
https://www.ncbi.nlm.nih.gov/pubmed/34123057
http://dx.doi.org/10.1039/c9sc04587b
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