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A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy

The nanostructured β″ precipitates are critical for the strength of Al-Mg-Si-(Cu) aluminum alloys. However, there are still controversial reports about the composition of Cu-containing β″ phases. In this work, first-principles calculations based on density functional theory were used to investigate...

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Autores principales: He, Shaozhi, Wang, Jiong, Zhang, Donglan, Wu, Qing, Kong, Yi, Du, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8706067/
https://www.ncbi.nlm.nih.gov/pubmed/34947473
http://dx.doi.org/10.3390/ma14247879
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author He, Shaozhi
Wang, Jiong
Zhang, Donglan
Wu, Qing
Kong, Yi
Du, Yong
author_facet He, Shaozhi
Wang, Jiong
Zhang, Donglan
Wu, Qing
Kong, Yi
Du, Yong
author_sort He, Shaozhi
collection PubMed
description The nanostructured β″ precipitates are critical for the strength of Al-Mg-Si-(Cu) aluminum alloys. However, there are still controversial reports about the composition of Cu-containing β″ phases. In this work, first-principles calculations based on density functional theory were used to investigate the composition, mechanical properties, and electronic structure of Cu-containing β″ phases. The results predict that the Cu-containing β″ precipitates with a stoichiometry of Mg(4+x)Al(2−x)CuSi(4) (x = 0, 1) are energetically favorable. As the concentration of Cu atoms increases, Cu-containing β″ phases with different compositions will appear, such as Mg(4)AlCu(2)Si(4) and Mg(4)Cu(3)Si(4). The replacement order of Cu atoms in β″ phases can be summarized as one Si3/Al site → two Si3/Al sites → two Si3/Al sites and one Mg1 site. The calculated elastic constants of the considered β″ phases suggest that they are all mechanically stable, and all β″ phases are ductile. When Cu atoms replace Al atoms at Si3/Al sites in β″ phases, the values of bulk modulus (B), shear modulus (G), and Young’s modulus (E) all increase. The calculation of the phonon spectrum shows that Mg(4+x)Al(2−x)CuSi(4) (x = 0, 1) are also dynamically stable. The electronic structure analysis shows that the bond between the Si atom and the Cu atom has a covalent like property. The incorporation of the Cu atom enhances the electron interaction between the Mg2 and the Si3 atom so that the Mg2 atom also joins the Si network, which may be one of the reasons why Cu atoms increase the structure stability of the β″ phases.
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spelling pubmed-87060672021-12-25 A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy He, Shaozhi Wang, Jiong Zhang, Donglan Wu, Qing Kong, Yi Du, Yong Materials (Basel) Article The nanostructured β″ precipitates are critical for the strength of Al-Mg-Si-(Cu) aluminum alloys. However, there are still controversial reports about the composition of Cu-containing β″ phases. In this work, first-principles calculations based on density functional theory were used to investigate the composition, mechanical properties, and electronic structure of Cu-containing β″ phases. The results predict that the Cu-containing β″ precipitates with a stoichiometry of Mg(4+x)Al(2−x)CuSi(4) (x = 0, 1) are energetically favorable. As the concentration of Cu atoms increases, Cu-containing β″ phases with different compositions will appear, such as Mg(4)AlCu(2)Si(4) and Mg(4)Cu(3)Si(4). The replacement order of Cu atoms in β″ phases can be summarized as one Si3/Al site → two Si3/Al sites → two Si3/Al sites and one Mg1 site. The calculated elastic constants of the considered β″ phases suggest that they are all mechanically stable, and all β″ phases are ductile. When Cu atoms replace Al atoms at Si3/Al sites in β″ phases, the values of bulk modulus (B), shear modulus (G), and Young’s modulus (E) all increase. The calculation of the phonon spectrum shows that Mg(4+x)Al(2−x)CuSi(4) (x = 0, 1) are also dynamically stable. The electronic structure analysis shows that the bond between the Si atom and the Cu atom has a covalent like property. The incorporation of the Cu atom enhances the electron interaction between the Mg2 and the Si3 atom so that the Mg2 atom also joins the Si network, which may be one of the reasons why Cu atoms increase the structure stability of the β″ phases. MDPI 2021-12-19 /pmc/articles/PMC8706067/ /pubmed/34947473 http://dx.doi.org/10.3390/ma14247879 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
He, Shaozhi
Wang, Jiong
Zhang, Donglan
Wu, Qing
Kong, Yi
Du, Yong
A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy
title A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy
title_full A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy
title_fullStr A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy
title_full_unstemmed A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy
title_short A First-Principles Study of the Cu-Containing β″ Precipitates in Al-Mg-Si-Cu Alloy
title_sort first-principles study of the cu-containing β″ precipitates in al-mg-si-cu alloy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8706067/
https://www.ncbi.nlm.nih.gov/pubmed/34947473
http://dx.doi.org/10.3390/ma14247879
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