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Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices

[Image: see text] The crystallization of nanomaterials is a primary source of solid-state, photonic structures. Thus, a detailed understanding of this process is of paramount importance for the successful application of photonic nanomaterials in emerging optoelectronic technologies. While colloidal...

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Autores principales: Bagiński, Maciej, Pedrazo-Tardajos, Adrián, Altantzis, Thomas, Tupikowska, Martyna, Vetter, Andreas, Tomczyk, Ewelina, Suryadharma, Radius N.S., Pawlak, Mateusz, Andruszkiewicz, Aneta, Górecka, Ewa, Pociecha, Damian, Rockstuhl, Carsten, Bals, Sara, Lewandowski, Wiktor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8028333/
https://www.ncbi.nlm.nih.gov/pubmed/33621046
http://dx.doi.org/10.1021/acsnano.0c09746
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author Bagiński, Maciej
Pedrazo-Tardajos, Adrián
Altantzis, Thomas
Tupikowska, Martyna
Vetter, Andreas
Tomczyk, Ewelina
Suryadharma, Radius N.S.
Pawlak, Mateusz
Andruszkiewicz, Aneta
Górecka, Ewa
Pociecha, Damian
Rockstuhl, Carsten
Bals, Sara
Lewandowski, Wiktor
author_facet Bagiński, Maciej
Pedrazo-Tardajos, Adrián
Altantzis, Thomas
Tupikowska, Martyna
Vetter, Andreas
Tomczyk, Ewelina
Suryadharma, Radius N.S.
Pawlak, Mateusz
Andruszkiewicz, Aneta
Górecka, Ewa
Pociecha, Damian
Rockstuhl, Carsten
Bals, Sara
Lewandowski, Wiktor
author_sort Bagiński, Maciej
collection PubMed
description [Image: see text] The crystallization of nanomaterials is a primary source of solid-state, photonic structures. Thus, a detailed understanding of this process is of paramount importance for the successful application of photonic nanomaterials in emerging optoelectronic technologies. While colloidal crystallization has been thoroughly studied, for example, with advanced in situ electron microscopy methods, the noncolloidal crystallization (freezing) of nanoparticles (NPs) remains so far unexplored. To fill this gap, in this work, we present proof-of-principle experiments decoding a crystallization of reconfigurable assemblies of NPs at a solid state. The chosen material corresponds to an excellent testing bed, as it enables both in situ and ex situ investigation using X-ray diffraction (XRD), transmission electron microscopy (TEM), high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM), atomic force microscopy (AFM), and optical spectroscopy in visible and ultraviolet range (UV–vis) techniques. In particular, ensemble measurements with small-angle XRD highlighted the dependence of the correlation length in the NPs assemblies on the number of heating/cooling cycles and the rate of cooling. Ex situ TEM imaging further supported these results by revealing a dependence of domain size and structure on the sample preparation route and by showing we can control the domain size over 2 orders of magnitude. The application of HAADF-STEM tomography, combined with in situ thermal control, provided three-dimensional single-particle level information on the positional order evolution within assemblies. This combination of real and reciprocal space provides insightful information on the anisotropic, reversibly reconfigurable assemblies of NPs. TEM measurements also highlighted the importance of interfaces in the polydomain structure of nanoparticle solids, allowing us to understand experimentally observed differences in UV–vis extinction spectra of the differently prepared crystallites. Overall, the obtained results show that the combination of in situ heating HAADF-STEM tomography with XRD and ex situ TEM techniques is a powerful approach to study nanoparticle freezing processes and to reveal the crucial impact of disorder in the solid-state aggregates of NPs on their plasmonic properties.
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spelling pubmed-80283332021-04-08 Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices Bagiński, Maciej Pedrazo-Tardajos, Adrián Altantzis, Thomas Tupikowska, Martyna Vetter, Andreas Tomczyk, Ewelina Suryadharma, Radius N.S. Pawlak, Mateusz Andruszkiewicz, Aneta Górecka, Ewa Pociecha, Damian Rockstuhl, Carsten Bals, Sara Lewandowski, Wiktor ACS Nano [Image: see text] The crystallization of nanomaterials is a primary source of solid-state, photonic structures. Thus, a detailed understanding of this process is of paramount importance for the successful application of photonic nanomaterials in emerging optoelectronic technologies. While colloidal crystallization has been thoroughly studied, for example, with advanced in situ electron microscopy methods, the noncolloidal crystallization (freezing) of nanoparticles (NPs) remains so far unexplored. To fill this gap, in this work, we present proof-of-principle experiments decoding a crystallization of reconfigurable assemblies of NPs at a solid state. The chosen material corresponds to an excellent testing bed, as it enables both in situ and ex situ investigation using X-ray diffraction (XRD), transmission electron microscopy (TEM), high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM), atomic force microscopy (AFM), and optical spectroscopy in visible and ultraviolet range (UV–vis) techniques. In particular, ensemble measurements with small-angle XRD highlighted the dependence of the correlation length in the NPs assemblies on the number of heating/cooling cycles and the rate of cooling. Ex situ TEM imaging further supported these results by revealing a dependence of domain size and structure on the sample preparation route and by showing we can control the domain size over 2 orders of magnitude. The application of HAADF-STEM tomography, combined with in situ thermal control, provided three-dimensional single-particle level information on the positional order evolution within assemblies. This combination of real and reciprocal space provides insightful information on the anisotropic, reversibly reconfigurable assemblies of NPs. TEM measurements also highlighted the importance of interfaces in the polydomain structure of nanoparticle solids, allowing us to understand experimentally observed differences in UV–vis extinction spectra of the differently prepared crystallites. Overall, the obtained results show that the combination of in situ heating HAADF-STEM tomography with XRD and ex situ TEM techniques is a powerful approach to study nanoparticle freezing processes and to reveal the crucial impact of disorder in the solid-state aggregates of NPs on their plasmonic properties. American Chemical Society 2021-02-23 2021-03-23 /pmc/articles/PMC8028333/ /pubmed/33621046 http://dx.doi.org/10.1021/acsnano.0c09746 Text en © 2021 The Authors. Published by American Chemical Society Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Bagiński, Maciej
Pedrazo-Tardajos, Adrián
Altantzis, Thomas
Tupikowska, Martyna
Vetter, Andreas
Tomczyk, Ewelina
Suryadharma, Radius N.S.
Pawlak, Mateusz
Andruszkiewicz, Aneta
Górecka, Ewa
Pociecha, Damian
Rockstuhl, Carsten
Bals, Sara
Lewandowski, Wiktor
Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices
title Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices
title_full Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices
title_fullStr Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices
title_full_unstemmed Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices
title_short Understanding and Controlling the Crystallization Process in Reconfigurable Plasmonic Superlattices
title_sort understanding and controlling the crystallization process in reconfigurable plasmonic superlattices
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8028333/
https://www.ncbi.nlm.nih.gov/pubmed/33621046
http://dx.doi.org/10.1021/acsnano.0c09746
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