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Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors

The plasmonic features of gold nanomaterials provide intriguing optical effects which can find potential applications in various fields. These effects depend strongly on the size and shape of the metal nanostructures. For instance, Au bipyramids (AuBPs) exhibit intense and well-defined plasmon reson...

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Autores principales: Mendoza, Carlos, Désert, Anthony, Chateau, Denis, Monnereau, Cyrille, Khrouz, Lhoussain, Lerouge, Fréderic, Andraud, Chantal, Monbaliu, Jean-Christophe M., Parola, Stéphane, Heinrichs, Benoît
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9416853/
https://www.ncbi.nlm.nih.gov/pubmed/36132037
http://dx.doi.org/10.1039/d0na00533a
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author Mendoza, Carlos
Désert, Anthony
Chateau, Denis
Monnereau, Cyrille
Khrouz, Lhoussain
Lerouge, Fréderic
Andraud, Chantal
Monbaliu, Jean-Christophe M.
Parola, Stéphane
Heinrichs, Benoît
author_facet Mendoza, Carlos
Désert, Anthony
Chateau, Denis
Monnereau, Cyrille
Khrouz, Lhoussain
Lerouge, Fréderic
Andraud, Chantal
Monbaliu, Jean-Christophe M.
Parola, Stéphane
Heinrichs, Benoît
author_sort Mendoza, Carlos
collection PubMed
description The plasmonic features of gold nanomaterials provide intriguing optical effects which can find potential applications in various fields. These effects depend strongly on the size and shape of the metal nanostructures. For instance, Au bipyramids (AuBPs) exhibit intense and well-defined plasmon resonance, easily tunable by controlling their aspect ratio, which can act synergistically with chromophores for enhancing their photophysical properties. In Rose Bengal-nanoparticle systems it is now well established that the control of the dye-to-nanoparticle distance ranging from 10 to 20 nm as well as spectral overlaps is crucial to achieve appropriate coupling between the plasmon resonance and the dye, thus affecting its ability to generate singlet oxygen ((1)O(2)). We have developed AuBPs@mSiO(2) core–shell nanostructures that provide control over the distance between the metal surface and the photosensitizers for improving the production of (1)O(2) (metal-enhanced (1)O(2) production – ME(1)O(2)). A drastic enhancement of (1)O(2) generation is evidenced for the resulting AuBPs and AuBPs@mSiO(2) in the presence of Rose Bengal, using a combination of three indirect methods of (1)O(2) detection, namely in operando Electron Paramagnetic Resonance (EPR) with 2,2,6,6-tetramethylpiperidine (TEMP) as a chemical trap, photooxygenation of the fluorescence probe anthracene-9,10-dipropionic acid (ADPA), and photooxygenation of methionine to methionine sulfoxide in a segmented flow microreactor.
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spelling pubmed-94168532022-09-20 Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors Mendoza, Carlos Désert, Anthony Chateau, Denis Monnereau, Cyrille Khrouz, Lhoussain Lerouge, Fréderic Andraud, Chantal Monbaliu, Jean-Christophe M. Parola, Stéphane Heinrichs, Benoît Nanoscale Adv Chemistry The plasmonic features of gold nanomaterials provide intriguing optical effects which can find potential applications in various fields. These effects depend strongly on the size and shape of the metal nanostructures. For instance, Au bipyramids (AuBPs) exhibit intense and well-defined plasmon resonance, easily tunable by controlling their aspect ratio, which can act synergistically with chromophores for enhancing their photophysical properties. In Rose Bengal-nanoparticle systems it is now well established that the control of the dye-to-nanoparticle distance ranging from 10 to 20 nm as well as spectral overlaps is crucial to achieve appropriate coupling between the plasmon resonance and the dye, thus affecting its ability to generate singlet oxygen ((1)O(2)). We have developed AuBPs@mSiO(2) core–shell nanostructures that provide control over the distance between the metal surface and the photosensitizers for improving the production of (1)O(2) (metal-enhanced (1)O(2) production – ME(1)O(2)). A drastic enhancement of (1)O(2) generation is evidenced for the resulting AuBPs and AuBPs@mSiO(2) in the presence of Rose Bengal, using a combination of three indirect methods of (1)O(2) detection, namely in operando Electron Paramagnetic Resonance (EPR) with 2,2,6,6-tetramethylpiperidine (TEMP) as a chemical trap, photooxygenation of the fluorescence probe anthracene-9,10-dipropionic acid (ADPA), and photooxygenation of methionine to methionine sulfoxide in a segmented flow microreactor. RSC 2020-09-11 /pmc/articles/PMC9416853/ /pubmed/36132037 http://dx.doi.org/10.1039/d0na00533a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Mendoza, Carlos
Désert, Anthony
Chateau, Denis
Monnereau, Cyrille
Khrouz, Lhoussain
Lerouge, Fréderic
Andraud, Chantal
Monbaliu, Jean-Christophe M.
Parola, Stéphane
Heinrichs, Benoît
Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors
title Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors
title_full Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors
title_fullStr Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors
title_full_unstemmed Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors
title_short Au nanobipyramids@mSiO(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors
title_sort au nanobipyramids@msio(2) core–shell nanoparticles for plasmon-enhanced singlet oxygen photooxygenations in segmented flow microreactors
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9416853/
https://www.ncbi.nlm.nih.gov/pubmed/36132037
http://dx.doi.org/10.1039/d0na00533a
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