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A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations

We investigated the short- and medium-range structural features of sodium aluminosilicate glasses with various P(2)O(5) (0–7 mol%) content and Al/Na ratios ranging from 0.667 to 2.000 by using molecular dynamics simulations. The local environment evolution of network former cations (Si, Al, P) and t...

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Autores principales: Zhao, Yaxian, Du, Jincheng, Cao, Xin, Zhang, Chong, Xu, Gang, Qiao, Xvsheng, Liu, Yong, Peng, Shou, Han, Gaorong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8694886/
https://www.ncbi.nlm.nih.gov/pubmed/35423197
http://dx.doi.org/10.1039/d0ra10810c
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author Zhao, Yaxian
Du, Jincheng
Cao, Xin
Zhang, Chong
Xu, Gang
Qiao, Xvsheng
Liu, Yong
Peng, Shou
Han, Gaorong
author_facet Zhao, Yaxian
Du, Jincheng
Cao, Xin
Zhang, Chong
Xu, Gang
Qiao, Xvsheng
Liu, Yong
Peng, Shou
Han, Gaorong
author_sort Zhao, Yaxian
collection PubMed
description We investigated the short- and medium-range structural features of sodium aluminosilicate glasses with various P(2)O(5) (0–7 mol%) content and Al/Na ratios ranging from 0.667 to 2.000 by using molecular dynamics simulations. The local environment evolution of network former cations (Si, Al, P) and the extent of clustering behavior of modifiers (Na(+)) is determined through pair distribution function (PDF), total correlation function (TDF), coordination number (CN), Q(x)(n) distribution and oxygen speciation analysis. We show that Al–O–P and Si–O–Al linkage is preferred over other connections as compared to a random model and that Si–O–Si linkage is promoted by the P(2)O(5) addition, which is related to structural heterogeneity and generates well-separated silicon-rich and aluminum–phosphorus-rich regions. Meanwhile, due to the relatively high propensity of Al to both Si and P, heterogeneity can be partly overcome with high Al content. A small amount of Si–O–P linkages have been detected at the interface of separated regions. Clustering of Na(+) is also observed and intensified with the addition of P(2)O(5). Based on the simulated structural information, a modified random network model for P(2)O(5)-bearing sodium aluminosilicate glass has been proposed, which could be useful to optimize the mobility of sodium ions and design novel functional glass compositions.
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spelling pubmed-86948862022-04-13 A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations Zhao, Yaxian Du, Jincheng Cao, Xin Zhang, Chong Xu, Gang Qiao, Xvsheng Liu, Yong Peng, Shou Han, Gaorong RSC Adv Chemistry We investigated the short- and medium-range structural features of sodium aluminosilicate glasses with various P(2)O(5) (0–7 mol%) content and Al/Na ratios ranging from 0.667 to 2.000 by using molecular dynamics simulations. The local environment evolution of network former cations (Si, Al, P) and the extent of clustering behavior of modifiers (Na(+)) is determined through pair distribution function (PDF), total correlation function (TDF), coordination number (CN), Q(x)(n) distribution and oxygen speciation analysis. We show that Al–O–P and Si–O–Al linkage is preferred over other connections as compared to a random model and that Si–O–Si linkage is promoted by the P(2)O(5) addition, which is related to structural heterogeneity and generates well-separated silicon-rich and aluminum–phosphorus-rich regions. Meanwhile, due to the relatively high propensity of Al to both Si and P, heterogeneity can be partly overcome with high Al content. A small amount of Si–O–P linkages have been detected at the interface of separated regions. Clustering of Na(+) is also observed and intensified with the addition of P(2)O(5). Based on the simulated structural information, a modified random network model for P(2)O(5)-bearing sodium aluminosilicate glass has been proposed, which could be useful to optimize the mobility of sodium ions and design novel functional glass compositions. The Royal Society of Chemistry 2021-02-10 /pmc/articles/PMC8694886/ /pubmed/35423197 http://dx.doi.org/10.1039/d0ra10810c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhao, Yaxian
Du, Jincheng
Cao, Xin
Zhang, Chong
Xu, Gang
Qiao, Xvsheng
Liu, Yong
Peng, Shou
Han, Gaorong
A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations
title A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations
title_full A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations
title_fullStr A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations
title_full_unstemmed A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations
title_short A modified random network model for P(2)O(5)–Na(2)O–Al(2)O(3)–SiO(2) glass studied by molecular dynamics simulations
title_sort modified random network model for p(2)o(5)–na(2)o–al(2)o(3)–sio(2) glass studied by molecular dynamics simulations
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8694886/
https://www.ncbi.nlm.nih.gov/pubmed/35423197
http://dx.doi.org/10.1039/d0ra10810c
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