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Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations

MAX phases have exhibited diverse physical properties, inspiring their promising applications in several important research fields. The introduction of a chalcogen atom into a phase of MAX has further facilitated the modulation of their physical properties and the extension of MAX family diversity....

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Detalles Bibliográficos
Autores principales: Bai, Xiaojing, Chen, Ke, Luo, Kan, Qiu, Nianxiang, Huang, Qing, Han, Qi, Liang, Haijing, Zhang, Xiaohong, Bai, Chengying
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10420148/
https://www.ncbi.nlm.nih.gov/pubmed/37570159
http://dx.doi.org/10.3390/ma16155455
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author Bai, Xiaojing
Chen, Ke
Luo, Kan
Qiu, Nianxiang
Huang, Qing
Han, Qi
Liang, Haijing
Zhang, Xiaohong
Bai, Chengying
author_facet Bai, Xiaojing
Chen, Ke
Luo, Kan
Qiu, Nianxiang
Huang, Qing
Han, Qi
Liang, Haijing
Zhang, Xiaohong
Bai, Chengying
author_sort Bai, Xiaojing
collection PubMed
description MAX phases have exhibited diverse physical properties, inspiring their promising applications in several important research fields. The introduction of a chalcogen atom into a phase of MAX has further facilitated the modulation of their physical properties and the extension of MAX family diversity. The physical characteristics of the novel chalcogen-containing MAX 211 phase Zr(2)SeB and Zr(2)SeN have been systematically investigated. The present investigation is conducted from a multi-faceted perspective that encompasses the stability, electronic structure, and mechanical properties of the system, via the employment of the first-principles density functional theory methodology. By replacing C with B/N in the chalcogen-containing MAX phase, it has been shown that their corresponding mechanical properties are appropriately tuned, which may offer a way to design novel MAX phase materials with enriched properties. In order to assess the dynamical and mechanical stability of the systems under investigation, a thorough evaluation has been carried out based on the analysis of phonon dispersions and elastic constants conditions. The predicted results reveal a strong interaction between zirconium and boron or nitrogen within the structures of Zr(2)SeB and Zr(2)SeN. The calculated band structures and electronic density of states for Zr(2)SeB and Zr(2)SeN demonstrate their metallic nature and anisotropic conductivity. The theoretically estimated Pugh and Poisson ratios imply that these phases are characterized by brittleness.
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spelling pubmed-104201482023-08-12 Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations Bai, Xiaojing Chen, Ke Luo, Kan Qiu, Nianxiang Huang, Qing Han, Qi Liang, Haijing Zhang, Xiaohong Bai, Chengying Materials (Basel) Article MAX phases have exhibited diverse physical properties, inspiring their promising applications in several important research fields. The introduction of a chalcogen atom into a phase of MAX has further facilitated the modulation of their physical properties and the extension of MAX family diversity. The physical characteristics of the novel chalcogen-containing MAX 211 phase Zr(2)SeB and Zr(2)SeN have been systematically investigated. The present investigation is conducted from a multi-faceted perspective that encompasses the stability, electronic structure, and mechanical properties of the system, via the employment of the first-principles density functional theory methodology. By replacing C with B/N in the chalcogen-containing MAX phase, it has been shown that their corresponding mechanical properties are appropriately tuned, which may offer a way to design novel MAX phase materials with enriched properties. In order to assess the dynamical and mechanical stability of the systems under investigation, a thorough evaluation has been carried out based on the analysis of phonon dispersions and elastic constants conditions. The predicted results reveal a strong interaction between zirconium and boron or nitrogen within the structures of Zr(2)SeB and Zr(2)SeN. The calculated band structures and electronic density of states for Zr(2)SeB and Zr(2)SeN demonstrate their metallic nature and anisotropic conductivity. The theoretically estimated Pugh and Poisson ratios imply that these phases are characterized by brittleness. MDPI 2023-08-03 /pmc/articles/PMC10420148/ /pubmed/37570159 http://dx.doi.org/10.3390/ma16155455 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
Bai, Xiaojing
Chen, Ke
Luo, Kan
Qiu, Nianxiang
Huang, Qing
Han, Qi
Liang, Haijing
Zhang, Xiaohong
Bai, Chengying
Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations
title Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations
title_full Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations
title_fullStr Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations
title_full_unstemmed Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations
title_short Structural, Electronic, and Mechanical Properties of Zr(2)SeB and Zr(2)SeN from First-Principle Investigations
title_sort structural, electronic, and mechanical properties of zr(2)seb and zr(2)sen from first-principle investigations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10420148/
https://www.ncbi.nlm.nih.gov/pubmed/37570159
http://dx.doi.org/10.3390/ma16155455
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