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Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity

[Image: see text] Nanocrystal assembly into ordered structures provides mesostructural functional materials with a precise control that starts at the atomic scale. However, the lack of understanding on the self-assembly itself plus the poor structural integrity of the resulting supercrystalline mate...

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Autores principales: Plunkett, Alexander, Kampferbeck, Michael, Bor, Büsra, Sazama, Uta, Krekeler, Tobias, Bekaert, Lieven, Noei, Heshmat, Giuntini, Diletta, Fröba, Michael, Stierle, Andreas, Weller, Horst, Vossmeyer, Tobias, Schneider, Gerold A., Domènech, Berta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9413410/
https://www.ncbi.nlm.nih.gov/pubmed/35760395
http://dx.doi.org/10.1021/acsnano.2c01332
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author Plunkett, Alexander
Kampferbeck, Michael
Bor, Büsra
Sazama, Uta
Krekeler, Tobias
Bekaert, Lieven
Noei, Heshmat
Giuntini, Diletta
Fröba, Michael
Stierle, Andreas
Weller, Horst
Vossmeyer, Tobias
Schneider, Gerold A.
Domènech, Berta
author_facet Plunkett, Alexander
Kampferbeck, Michael
Bor, Büsra
Sazama, Uta
Krekeler, Tobias
Bekaert, Lieven
Noei, Heshmat
Giuntini, Diletta
Fröba, Michael
Stierle, Andreas
Weller, Horst
Vossmeyer, Tobias
Schneider, Gerold A.
Domènech, Berta
author_sort Plunkett, Alexander
collection PubMed
description [Image: see text] Nanocrystal assembly into ordered structures provides mesostructural functional materials with a precise control that starts at the atomic scale. However, the lack of understanding on the self-assembly itself plus the poor structural integrity of the resulting supercrystalline materials still limits their application into engineered materials and devices. Surface functionalization of the nanobuilding blocks with organic ligands can be used not only as a means to control the interparticle interactions during self-assembly but also as a reactive platform to further strengthen the final material via ligand cross-linking. Here, we explore the influence of the ligands on superlattice formation and during cross-linking via thermal annealing. We elucidate the effect of the surface functionalization on the nanostructure during self-assembly and show how the ligand-promoted superlattice changes subsequently alter the cross-linking behavior. By gaining further insights on the chemical species derived from the thermally activated cross-linking and its effect in the overall mechanical response, we identify an oxidative radical polymerization as the main mechanism responsible for the ligand cross-linking. In the cascade of reactions occurring during the surface-ligands polymerization, the nanocrystal core material plays a catalytic role, being strongly affected by the anchoring group of the surface ligands. Ultimately, we demonstrate how the found mechanistic insights can be used to adjust the mechanical and nanostructural properties of the obtained nanocomposites. These results enable engineering supercrystalline nanocomposites with improved cohesion while preserving their characteristic nanostructure, which is required to achieve the collective properties for broad functional applications.
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spelling pubmed-94134102022-08-27 Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity Plunkett, Alexander Kampferbeck, Michael Bor, Büsra Sazama, Uta Krekeler, Tobias Bekaert, Lieven Noei, Heshmat Giuntini, Diletta Fröba, Michael Stierle, Andreas Weller, Horst Vossmeyer, Tobias Schneider, Gerold A. Domènech, Berta ACS Nano [Image: see text] Nanocrystal assembly into ordered structures provides mesostructural functional materials with a precise control that starts at the atomic scale. However, the lack of understanding on the self-assembly itself plus the poor structural integrity of the resulting supercrystalline materials still limits their application into engineered materials and devices. Surface functionalization of the nanobuilding blocks with organic ligands can be used not only as a means to control the interparticle interactions during self-assembly but also as a reactive platform to further strengthen the final material via ligand cross-linking. Here, we explore the influence of the ligands on superlattice formation and during cross-linking via thermal annealing. We elucidate the effect of the surface functionalization on the nanostructure during self-assembly and show how the ligand-promoted superlattice changes subsequently alter the cross-linking behavior. By gaining further insights on the chemical species derived from the thermally activated cross-linking and its effect in the overall mechanical response, we identify an oxidative radical polymerization as the main mechanism responsible for the ligand cross-linking. In the cascade of reactions occurring during the surface-ligands polymerization, the nanocrystal core material plays a catalytic role, being strongly affected by the anchoring group of the surface ligands. Ultimately, we demonstrate how the found mechanistic insights can be used to adjust the mechanical and nanostructural properties of the obtained nanocomposites. These results enable engineering supercrystalline nanocomposites with improved cohesion while preserving their characteristic nanostructure, which is required to achieve the collective properties for broad functional applications. American Chemical Society 2022-06-27 2022-08-23 /pmc/articles/PMC9413410/ /pubmed/35760395 http://dx.doi.org/10.1021/acsnano.2c01332 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Plunkett, Alexander
Kampferbeck, Michael
Bor, Büsra
Sazama, Uta
Krekeler, Tobias
Bekaert, Lieven
Noei, Heshmat
Giuntini, Diletta
Fröba, Michael
Stierle, Andreas
Weller, Horst
Vossmeyer, Tobias
Schneider, Gerold A.
Domènech, Berta
Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity
title Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity
title_full Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity
title_fullStr Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity
title_full_unstemmed Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity
title_short Strengthening Engineered Nanocrystal Three-Dimensional Superlattices via Ligand Conformation and Reactivity
title_sort strengthening engineered nanocrystal three-dimensional superlattices via ligand conformation and reactivity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9413410/
https://www.ncbi.nlm.nih.gov/pubmed/35760395
http://dx.doi.org/10.1021/acsnano.2c01332
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