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Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory

In this study, the cohesive energy, interfacial energy, electronic structure, and bonding of Mg(2)Si (111)/Mg(3)Sb(2) (0001) were investigated by using the first-principles method based on density functional theory. Meanwhile, the mechanism of the Mg(3)Sb(2) heterogeneous nucleation potency on Mg(2)...

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Autores principales: Wang, Mingjie, Zhang, Guowei, Xu, Hong, Fu, Yizheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7178643/
https://www.ncbi.nlm.nih.gov/pubmed/32260269
http://dx.doi.org/10.3390/ma13071681
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author Wang, Mingjie
Zhang, Guowei
Xu, Hong
Fu, Yizheng
author_facet Wang, Mingjie
Zhang, Guowei
Xu, Hong
Fu, Yizheng
author_sort Wang, Mingjie
collection PubMed
description In this study, the cohesive energy, interfacial energy, electronic structure, and bonding of Mg(2)Si (111)/Mg(3)Sb(2) (0001) were investigated by using the first-principles method based on density functional theory. Meanwhile, the mechanism of the Mg(3)Sb(2) heterogeneous nucleation potency on Mg(2)Si grains was revealed. The results indicated that the Mg(3)Sb(2) (0001) slab and the Mg(2)Si (111) slab achieved bulk-like characteristics when the atomic layers N ≥ 11, and the work of adhesion of the hollow-site (HCP) stacking structure (the interfacial Sb atom located on top of the Si atom in the second layer of Mg(2)Si) was larger than that of the other stacking structures. For the four HCP stacking structures, the Sb-terminated Mg(3)Sb(2)/Si-terminated Mg(2)Si interface with a hollow site showed the largest work of adhesion and the smallest interfacial energy, which implied the strongest stability among 12 different interface models. In addition, the difference in the charge density and the partial density of states indicated that the electronic structure of the Si-HCP-Sb interface presented a strong covalent, and the bonding of the Si-HCP-Mg interface and the Mg-HCP-Sb interface was a mixture of a covalent bond and a metallic bond, while the Mg-HCP-Mg interfacial bonding corresponded to metallicity. As a result, the Mg(2)Si was conducive to form a nucleus on the Sb-terminated-hollow-site Mg(3)Sb(2) (0001) surface, and the Mg(3)Sb(2) particles promoted the Mg(2)Si heterogeneous nucleation, which was consistent with the experimental expectations.
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spelling pubmed-71786432020-04-28 Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory Wang, Mingjie Zhang, Guowei Xu, Hong Fu, Yizheng Materials (Basel) Article In this study, the cohesive energy, interfacial energy, electronic structure, and bonding of Mg(2)Si (111)/Mg(3)Sb(2) (0001) were investigated by using the first-principles method based on density functional theory. Meanwhile, the mechanism of the Mg(3)Sb(2) heterogeneous nucleation potency on Mg(2)Si grains was revealed. The results indicated that the Mg(3)Sb(2) (0001) slab and the Mg(2)Si (111) slab achieved bulk-like characteristics when the atomic layers N ≥ 11, and the work of adhesion of the hollow-site (HCP) stacking structure (the interfacial Sb atom located on top of the Si atom in the second layer of Mg(2)Si) was larger than that of the other stacking structures. For the four HCP stacking structures, the Sb-terminated Mg(3)Sb(2)/Si-terminated Mg(2)Si interface with a hollow site showed the largest work of adhesion and the smallest interfacial energy, which implied the strongest stability among 12 different interface models. In addition, the difference in the charge density and the partial density of states indicated that the electronic structure of the Si-HCP-Sb interface presented a strong covalent, and the bonding of the Si-HCP-Mg interface and the Mg-HCP-Sb interface was a mixture of a covalent bond and a metallic bond, while the Mg-HCP-Mg interfacial bonding corresponded to metallicity. As a result, the Mg(2)Si was conducive to form a nucleus on the Sb-terminated-hollow-site Mg(3)Sb(2) (0001) surface, and the Mg(3)Sb(2) particles promoted the Mg(2)Si heterogeneous nucleation, which was consistent with the experimental expectations. MDPI 2020-04-03 /pmc/articles/PMC7178643/ /pubmed/32260269 http://dx.doi.org/10.3390/ma13071681 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Mingjie
Zhang, Guowei
Xu, Hong
Fu, Yizheng
Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory
title Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory
title_full Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory
title_fullStr Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory
title_full_unstemmed Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory
title_short Investigation on Mg(3)Sb(2)/Mg(2)Si Heterogeneous Nucleation Interface Using Density Functional Theory
title_sort investigation on mg(3)sb(2)/mg(2)si heterogeneous nucleation interface using density functional theory
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7178643/
https://www.ncbi.nlm.nih.gov/pubmed/32260269
http://dx.doi.org/10.3390/ma13071681
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