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Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure

Stimulus-responsive supramolecular architectures have become an attractive alternative to conventional ones for many applications in sensing, drug-delivery and switchable memory systems. Herein, we used an anion receptor (H: host) as a hydrostatic-pressure-manipulatable fluorescence foldamer and hal...

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Autores principales: Kinoshita, Tomokazu, Haketa, Yohei, Maeda, Hiromitsu, Fukuhara, Gaku
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8132960/
https://www.ncbi.nlm.nih.gov/pubmed/34040743
http://dx.doi.org/10.1039/d1sc00664a
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author Kinoshita, Tomokazu
Haketa, Yohei
Maeda, Hiromitsu
Fukuhara, Gaku
author_facet Kinoshita, Tomokazu
Haketa, Yohei
Maeda, Hiromitsu
Fukuhara, Gaku
author_sort Kinoshita, Tomokazu
collection PubMed
description Stimulus-responsive supramolecular architectures have become an attractive alternative to conventional ones for many applications in sensing, drug-delivery and switchable memory systems. Herein, we used an anion receptor (H: host) as a hydrostatic-pressure-manipulatable fluorescence foldamer and halide anions as chiral (binaphthylammonium) and achiral (tetrabutylammonium) ion pairs (SS or RR·X and TBA·X; X = Cl, Br), and then investigated their (chir)optical properties and molecular recognition behavior under hydrostatic pressures. The conformational changes and optical properties of H in various organic solvents were revealed by UV/vis absorption and fluorescence spectra and fluorescence lifetimes upon hydrostatic pressurization. The anion-recognition abilities of H upon interactions with SS or RR·X and TBA·X at different pressure ranges were determined by hydrostatic-pressure spectroscopy to quantitatively afford the binding constant (K(anion)) and apparent reaction volume changes [Image: see text]. The results obtained indicate that hydrostatic pressure as well as solvation plays significant roles in the dynamic control of the present supramolecular system in the ground and excited states. This work will provide a new guideline for further developing hydrostatic-pressure-responsive foldamers and supramolecular materials.
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spelling pubmed-81329602021-05-25 Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure Kinoshita, Tomokazu Haketa, Yohei Maeda, Hiromitsu Fukuhara, Gaku Chem Sci Chemistry Stimulus-responsive supramolecular architectures have become an attractive alternative to conventional ones for many applications in sensing, drug-delivery and switchable memory systems. Herein, we used an anion receptor (H: host) as a hydrostatic-pressure-manipulatable fluorescence foldamer and halide anions as chiral (binaphthylammonium) and achiral (tetrabutylammonium) ion pairs (SS or RR·X and TBA·X; X = Cl, Br), and then investigated their (chir)optical properties and molecular recognition behavior under hydrostatic pressures. The conformational changes and optical properties of H in various organic solvents were revealed by UV/vis absorption and fluorescence spectra and fluorescence lifetimes upon hydrostatic pressurization. The anion-recognition abilities of H upon interactions with SS or RR·X and TBA·X at different pressure ranges were determined by hydrostatic-pressure spectroscopy to quantitatively afford the binding constant (K(anion)) and apparent reaction volume changes [Image: see text]. The results obtained indicate that hydrostatic pressure as well as solvation plays significant roles in the dynamic control of the present supramolecular system in the ground and excited states. This work will provide a new guideline for further developing hydrostatic-pressure-responsive foldamers and supramolecular materials. The Royal Society of Chemistry 2021-04-15 /pmc/articles/PMC8132960/ /pubmed/34040743 http://dx.doi.org/10.1039/d1sc00664a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Kinoshita, Tomokazu
Haketa, Yohei
Maeda, Hiromitsu
Fukuhara, Gaku
Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure
title Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure
title_full Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure
title_fullStr Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure
title_full_unstemmed Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure
title_short Ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure
title_sort ground- and excited-state dynamic control of an anion receptor by hydrostatic pressure
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8132960/
https://www.ncbi.nlm.nih.gov/pubmed/34040743
http://dx.doi.org/10.1039/d1sc00664a
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