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Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials

The formation of hierarchical nanostructures using preformed dumbbell-like species made of covalent organic–inorganic polyoxometalate (POM)-based hybrids is herein described. In this system, the presence of charged subunits (POM, metal linkers, and counter ions) in the complex molecular architecture...

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Autores principales: Centellas, Mireia Segado, Piot, Madeleine, Salles, Raphaël, Proust, Anna, Tortech, Ludovic, Brouri, Dalil, Hupin, Sébastien, Abécassis, Benjamin, Landy, David, Bo, Carles, Izzet, Guillaume
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162291/
https://www.ncbi.nlm.nih.gov/pubmed/34123198
http://dx.doi.org/10.1039/d0sc03243c
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author Centellas, Mireia Segado
Piot, Madeleine
Salles, Raphaël
Proust, Anna
Tortech, Ludovic
Brouri, Dalil
Hupin, Sébastien
Abécassis, Benjamin
Landy, David
Bo, Carles
Izzet, Guillaume
author_facet Centellas, Mireia Segado
Piot, Madeleine
Salles, Raphaël
Proust, Anna
Tortech, Ludovic
Brouri, Dalil
Hupin, Sébastien
Abécassis, Benjamin
Landy, David
Bo, Carles
Izzet, Guillaume
author_sort Centellas, Mireia Segado
collection PubMed
description The formation of hierarchical nanostructures using preformed dumbbell-like species made of covalent organic–inorganic polyoxometalate (POM)-based hybrids is herein described. In this system, the presence of charged subunits (POM, metal linkers, and counter ions) in the complex molecular architecture can drive their aggregation, which results from a competition between the solvation energy of the discrete species and intermolecular electrostatic interactions. We show that the nature of the POM and the charge of the metal linker are key parameters for the hierarchical nanoorganization. The experimental findings were corroborated with a computational investigation combining DFT and molecular dynamics simulation methods, which outlines the importance of solvation of the counter ion and POM/counter ion association in the aggregation process. The dumbbell-like species can also form gels, in the presence of a poorer solvent, displaying similar nanoorganization of the aggregates. We show that starting from the designed molecular building units whose internal charges can be controlled by redox trigger we can achieve their implementation into soft nanostructured materials through the control of their supramolecular organization.
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spelling pubmed-81622912021-06-11 Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials Centellas, Mireia Segado Piot, Madeleine Salles, Raphaël Proust, Anna Tortech, Ludovic Brouri, Dalil Hupin, Sébastien Abécassis, Benjamin Landy, David Bo, Carles Izzet, Guillaume Chem Sci Chemistry The formation of hierarchical nanostructures using preformed dumbbell-like species made of covalent organic–inorganic polyoxometalate (POM)-based hybrids is herein described. In this system, the presence of charged subunits (POM, metal linkers, and counter ions) in the complex molecular architecture can drive their aggregation, which results from a competition between the solvation energy of the discrete species and intermolecular electrostatic interactions. We show that the nature of the POM and the charge of the metal linker are key parameters for the hierarchical nanoorganization. The experimental findings were corroborated with a computational investigation combining DFT and molecular dynamics simulation methods, which outlines the importance of solvation of the counter ion and POM/counter ion association in the aggregation process. The dumbbell-like species can also form gels, in the presence of a poorer solvent, displaying similar nanoorganization of the aggregates. We show that starting from the designed molecular building units whose internal charges can be controlled by redox trigger we can achieve their implementation into soft nanostructured materials through the control of their supramolecular organization. The Royal Society of Chemistry 2020-09-18 /pmc/articles/PMC8162291/ /pubmed/34123198 http://dx.doi.org/10.1039/d0sc03243c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Centellas, Mireia Segado
Piot, Madeleine
Salles, Raphaël
Proust, Anna
Tortech, Ludovic
Brouri, Dalil
Hupin, Sébastien
Abécassis, Benjamin
Landy, David
Bo, Carles
Izzet, Guillaume
Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials
title Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials
title_full Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials
title_fullStr Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials
title_full_unstemmed Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials
title_short Exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials
title_sort exploring the self-assembly of dumbbell-shaped polyoxometalate hybrids, from molecular building units to nanostructured soft materials
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162291/
https://www.ncbi.nlm.nih.gov/pubmed/34123198
http://dx.doi.org/10.1039/d0sc03243c
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