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Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly

In the field of functional nanomaterials, core–satellite nanoclusters have recently elicited great interest due to their unique optoelectronic properties. However, core–satellite synthetic routes to date are hampered by delicate and multistep reaction conditions and no practical method has been repo...

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Autores principales: Alvarez-Fernandez, Alberto, Nallet, Frédéric, Fontaine, Philippe, Cummins, Cian, Hadziioannou, Georges, Barois, Philippe, Fleury, Guillaume, Ponsinet, Virginie
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/PMC9057902/
https://www.ncbi.nlm.nih.gov/pubmed/35519210
http://dx.doi.org/10.1039/d0ra08730k
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author Alvarez-Fernandez, Alberto
Nallet, Frédéric
Fontaine, Philippe
Cummins, Cian
Hadziioannou, Georges
Barois, Philippe
Fleury, Guillaume
Ponsinet, Virginie
author_facet Alvarez-Fernandez, Alberto
Nallet, Frédéric
Fontaine, Philippe
Cummins, Cian
Hadziioannou, Georges
Barois, Philippe
Fleury, Guillaume
Ponsinet, Virginie
author_sort Alvarez-Fernandez, Alberto
collection PubMed
description In the field of functional nanomaterials, core–satellite nanoclusters have recently elicited great interest due to their unique optoelectronic properties. However, core–satellite synthetic routes to date are hampered by delicate and multistep reaction conditions and no practical method has been reported for the ordering of these structures onto a surface monolayer. Herein we show a reproducible and simplified thin film process to fabricate bimetallic raspberry nanoclusters using block copolymer (BCP) lithography. The fabricated inorganic raspberry nanoclusters consisted of a ∼36 nm alumina core decorated with ∼15 nm Au satellites after infusing multilayer BCP nanopatterns. A series of cylindrical BCPs with different molecular weights allowed us to dial in specific nanodot periodicities (from 30 to 80 nm). Highly ordered BCP nanopatterns were then selectively infiltrated with alumina and Au species to develop multi-level bimetallic raspberry features. Microscopy and X-ray reflectivity analysis were used at each fabrication step to gain further mechanistic insights and understand the infiltration process. Furthermore, grazing-incidence small-angle X-ray scattering studies of infiltrated films confirmed the excellent order and vertical orientation over wafer scale areas of Al(2)O(3)/Au raspberry nanoclusters. We believe our work demonstrates a robust strategy towards designing hybrid nanoclusters since BCP blocks can be infiltrated with various low cost salt-based precursors. The highly controlled nanocluster strategy disclosed here could have wide ranging uses, in particular for metasurface and optical based sensor applications.
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spelling pubmed-90579022022-05-04 Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly Alvarez-Fernandez, Alberto Nallet, Frédéric Fontaine, Philippe Cummins, Cian Hadziioannou, Georges Barois, Philippe Fleury, Guillaume Ponsinet, Virginie RSC Adv Chemistry In the field of functional nanomaterials, core–satellite nanoclusters have recently elicited great interest due to their unique optoelectronic properties. However, core–satellite synthetic routes to date are hampered by delicate and multistep reaction conditions and no practical method has been reported for the ordering of these structures onto a surface monolayer. Herein we show a reproducible and simplified thin film process to fabricate bimetallic raspberry nanoclusters using block copolymer (BCP) lithography. The fabricated inorganic raspberry nanoclusters consisted of a ∼36 nm alumina core decorated with ∼15 nm Au satellites after infusing multilayer BCP nanopatterns. A series of cylindrical BCPs with different molecular weights allowed us to dial in specific nanodot periodicities (from 30 to 80 nm). Highly ordered BCP nanopatterns were then selectively infiltrated with alumina and Au species to develop multi-level bimetallic raspberry features. Microscopy and X-ray reflectivity analysis were used at each fabrication step to gain further mechanistic insights and understand the infiltration process. Furthermore, grazing-incidence small-angle X-ray scattering studies of infiltrated films confirmed the excellent order and vertical orientation over wafer scale areas of Al(2)O(3)/Au raspberry nanoclusters. We believe our work demonstrates a robust strategy towards designing hybrid nanoclusters since BCP blocks can be infiltrated with various low cost salt-based precursors. The highly controlled nanocluster strategy disclosed here could have wide ranging uses, in particular for metasurface and optical based sensor applications. The Royal Society of Chemistry 2020-11-11 /pmc/articles/PMC9057902/ /pubmed/35519210 http://dx.doi.org/10.1039/d0ra08730k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Alvarez-Fernandez, Alberto
Nallet, Frédéric
Fontaine, Philippe
Cummins, Cian
Hadziioannou, Georges
Barois, Philippe
Fleury, Guillaume
Ponsinet, Virginie
Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly
title Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly
title_full Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly
title_fullStr Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly
title_full_unstemmed Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly
title_short Large area Al(2)O(3)–Au raspberry-like nanoclusters from iterative block-copolymer self-assembly
title_sort large area al(2)o(3)–au raspberry-like nanoclusters from iterative block-copolymer self-assembly
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057902/
https://www.ncbi.nlm.nih.gov/pubmed/35519210
http://dx.doi.org/10.1039/d0ra08730k
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