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Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering

We report on the formation of silver nanoparticles by gas aggregation in a reaction chamber at room temperature. The size distribution of nanoparticles deposited on a silicon substrate for various lengths of an aggregation (high-pressure) chamber was investigated by atomic force microscopy. Nanopart...

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Detalles Bibliográficos
Autores principales: Zikmund, Tomáš, Bulíř, Jiří, Novotný, Michal, Fekete, Ladislav, Chertopalov, Sergii, Irimiciuc, Stefan Andrei, Klementová, Mariana, Balogová, Jarmila, Lančok, Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9960102/
https://www.ncbi.nlm.nih.gov/pubmed/36837224
http://dx.doi.org/10.3390/ma16041591
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author Zikmund, Tomáš
Bulíř, Jiří
Novotný, Michal
Fekete, Ladislav
Chertopalov, Sergii
Irimiciuc, Stefan Andrei
Klementová, Mariana
Balogová, Jarmila
Lančok, Jan
author_facet Zikmund, Tomáš
Bulíř, Jiří
Novotný, Michal
Fekete, Ladislav
Chertopalov, Sergii
Irimiciuc, Stefan Andrei
Klementová, Mariana
Balogová, Jarmila
Lančok, Jan
author_sort Zikmund, Tomáš
collection PubMed
description We report on the formation of silver nanoparticles by gas aggregation in a reaction chamber at room temperature. The size distribution of nanoparticles deposited on a silicon substrate for various lengths of an aggregation (high-pressure) chamber was investigated by atomic force microscopy. Nanoparticles were characterized by scanning and transmission electron microscopy and spectral ellipsometry. The physical shape of the nanoparticles and its distribution was correlated with their optical properties. Metal–dielectric nanocomposites were deposited employing simultaneous deposition of Ag NPs via high-pressure magnetron sputtering and the dielectric matrix was deposited via thermal evaporation. Pure and Eu-, Er-, and Yb-doped lithium fluoride was used as the dielectric host matrix. Optical transmittance of lithium fluoride containing silver nanoparticles was measured and their theoretical absorption cross-section calculated. The nanoparticles were also embedded in Eu(3+)-doped downshifting and Er(3+)- and Y(b3+)-doped up-conversion materials to study their influence on emission spectra. Spectra of identical layers with and without nanoparticles were compared. Their transmittance at various annealing temperatures is also presented.
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spelling pubmed-99601022023-02-26 Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering Zikmund, Tomáš Bulíř, Jiří Novotný, Michal Fekete, Ladislav Chertopalov, Sergii Irimiciuc, Stefan Andrei Klementová, Mariana Balogová, Jarmila Lančok, Jan Materials (Basel) Article We report on the formation of silver nanoparticles by gas aggregation in a reaction chamber at room temperature. The size distribution of nanoparticles deposited on a silicon substrate for various lengths of an aggregation (high-pressure) chamber was investigated by atomic force microscopy. Nanoparticles were characterized by scanning and transmission electron microscopy and spectral ellipsometry. The physical shape of the nanoparticles and its distribution was correlated with their optical properties. Metal–dielectric nanocomposites were deposited employing simultaneous deposition of Ag NPs via high-pressure magnetron sputtering and the dielectric matrix was deposited via thermal evaporation. Pure and Eu-, Er-, and Yb-doped lithium fluoride was used as the dielectric host matrix. Optical transmittance of lithium fluoride containing silver nanoparticles was measured and their theoretical absorption cross-section calculated. The nanoparticles were also embedded in Eu(3+)-doped downshifting and Er(3+)- and Y(b3+)-doped up-conversion materials to study their influence on emission spectra. Spectra of identical layers with and without nanoparticles were compared. Their transmittance at various annealing temperatures is also presented. MDPI 2023-02-14 /pmc/articles/PMC9960102/ /pubmed/36837224 http://dx.doi.org/10.3390/ma16041591 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zikmund, Tomáš
Bulíř, Jiří
Novotný, Michal
Fekete, Ladislav
Chertopalov, Sergii
Irimiciuc, Stefan Andrei
Klementová, Mariana
Balogová, Jarmila
Lančok, Jan
Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering
title Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering
title_full Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering
title_fullStr Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering
title_full_unstemmed Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering
title_short Silver Nanoparticles for Fluorescent Nanocomposites by High-Pressure Magnetron Sputtering
title_sort silver nanoparticles for fluorescent nanocomposites by high-pressure magnetron sputtering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9960102/
https://www.ncbi.nlm.nih.gov/pubmed/36837224
http://dx.doi.org/10.3390/ma16041591
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