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The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations

Understanding the atomic structure of glasses is critical for developing new generations of materials with important technical applications. In particular, the local environment of rare-earth ions and their distribution and clustering is of great relevance for applications of rare earth-containing g...

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Autores principales: Zekri, Mohamed, Herrmann, Andreas, Erlebach, Andreas, Damak, Kamel, Rüssel, Christian, Sierka, Marek, Maâlej, Ramzi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8231570/
https://www.ncbi.nlm.nih.gov/pubmed/34204847
http://dx.doi.org/10.3390/ma14123265
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author Zekri, Mohamed
Herrmann, Andreas
Erlebach, Andreas
Damak, Kamel
Rüssel, Christian
Sierka, Marek
Maâlej, Ramzi
author_facet Zekri, Mohamed
Herrmann, Andreas
Erlebach, Andreas
Damak, Kamel
Rüssel, Christian
Sierka, Marek
Maâlej, Ramzi
author_sort Zekri, Mohamed
collection PubMed
description Understanding the atomic structure of glasses is critical for developing new generations of materials with important technical applications. In particular, the local environment of rare-earth ions and their distribution and clustering is of great relevance for applications of rare earth-containing glasses in photonic devices. In this work, the structure of Gd(2)O(3) doped lithium and potassium aluminosilicate glasses is investigated as a function of their network modifier oxide (NMO–Li(2)O, K(2)O) to aluminum oxide ratio using molecular dynamics simulations. The applied simulation procedure yields a set of configurations, the so-called inherent structures, of the liquid state slightly above the glass transition temperature. The generation of a large set of inherent structures allows a statistical sampling of the medium-range order of the Gd(3+) ions with less computational effort compared to other simulation methods. The resulting medium-range atomic structures of network former and modifier ions are in good agreement with experimental results and simulations of similar glasses. It was found that increasing NMO/Al ratio increases the network modifier coordination number with non-bridging oxygen sites and reduces the overall stability of the network structure. The fraction of non-bridging oxygen sites in the vicinity of Gd(3+) ions increases considerably with decreasing field strength and increasing concentration of the network modifier ions. These correlations could be confirmed even if the simulation results of alkaline earth aluminosilicate glasses are added to the analysis. In addition, the structure predictions generally indicate a low driving force for the clustering of Gd(3+). Here, network modifier ions of large ionic radii reduce the probability of Gd–O–Gd contacts.
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spelling pubmed-82315702021-06-26 The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations Zekri, Mohamed Herrmann, Andreas Erlebach, Andreas Damak, Kamel Rüssel, Christian Sierka, Marek Maâlej, Ramzi Materials (Basel) Article Understanding the atomic structure of glasses is critical for developing new generations of materials with important technical applications. In particular, the local environment of rare-earth ions and their distribution and clustering is of great relevance for applications of rare earth-containing glasses in photonic devices. In this work, the structure of Gd(2)O(3) doped lithium and potassium aluminosilicate glasses is investigated as a function of their network modifier oxide (NMO–Li(2)O, K(2)O) to aluminum oxide ratio using molecular dynamics simulations. The applied simulation procedure yields a set of configurations, the so-called inherent structures, of the liquid state slightly above the glass transition temperature. The generation of a large set of inherent structures allows a statistical sampling of the medium-range order of the Gd(3+) ions with less computational effort compared to other simulation methods. The resulting medium-range atomic structures of network former and modifier ions are in good agreement with experimental results and simulations of similar glasses. It was found that increasing NMO/Al ratio increases the network modifier coordination number with non-bridging oxygen sites and reduces the overall stability of the network structure. The fraction of non-bridging oxygen sites in the vicinity of Gd(3+) ions increases considerably with decreasing field strength and increasing concentration of the network modifier ions. These correlations could be confirmed even if the simulation results of alkaline earth aluminosilicate glasses are added to the analysis. In addition, the structure predictions generally indicate a low driving force for the clustering of Gd(3+). Here, network modifier ions of large ionic radii reduce the probability of Gd–O–Gd contacts. MDPI 2021-06-12 /pmc/articles/PMC8231570/ /pubmed/34204847 http://dx.doi.org/10.3390/ma14123265 Text en © 2021 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
Zekri, Mohamed
Herrmann, Andreas
Erlebach, Andreas
Damak, Kamel
Rüssel, Christian
Sierka, Marek
Maâlej, Ramzi
The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations
title The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations
title_full The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations
title_fullStr The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations
title_full_unstemmed The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations
title_short The Structure of Gd(3+)-Doped Li(2)O and K(2)O Containing Aluminosilicate Glasses from Molecular Dynamics Simulations
title_sort structure of gd(3+)-doped li(2)o and k(2)o containing aluminosilicate glasses from molecular dynamics simulations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8231570/
https://www.ncbi.nlm.nih.gov/pubmed/34204847
http://dx.doi.org/10.3390/ma14123265
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