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DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te]

[Image: see text] In this work, density functional theory (DFT)-based calculations were performed to compute the physical properties (structural stability, mechanical behavior, and electronic, thermodynamic, and optical properties) of synthesized MAX phases Hf(2)SB, Hf(2)SC, Hf(2)SeB, Hf(2)SeC, and...

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Autores principales: Islam, Jakiul, Islam, Md. Didarul, Ali, Md. Ashraf, Akter, Hasina, Hossain, Aslam, Biswas, Mautushi, Hossain, Md. Mukter, Uddin, Md. Mohi, Naqib, Saleh Hasan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10500686/
https://www.ncbi.nlm.nih.gov/pubmed/37720781
http://dx.doi.org/10.1021/acsomega.3c04283
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author Islam, Jakiul
Islam, Md. Didarul
Ali, Md. Ashraf
Akter, Hasina
Hossain, Aslam
Biswas, Mautushi
Hossain, Md. Mukter
Uddin, Md. Mohi
Naqib, Saleh Hasan
author_facet Islam, Jakiul
Islam, Md. Didarul
Ali, Md. Ashraf
Akter, Hasina
Hossain, Aslam
Biswas, Mautushi
Hossain, Md. Mukter
Uddin, Md. Mohi
Naqib, Saleh Hasan
author_sort Islam, Jakiul
collection PubMed
description [Image: see text] In this work, density functional theory (DFT)-based calculations were performed to compute the physical properties (structural stability, mechanical behavior, and electronic, thermodynamic, and optical properties) of synthesized MAX phases Hf(2)SB, Hf(2)SC, Hf(2)SeB, Hf(2)SeC, and Hf(2)TeB and the as-yet-undiscovered MAX carbide phase Hf(2)TeC. Calculations of formation energy, phonon dispersion curves, and elastic constants confirmed the stability of the aforementioned compounds, including the predicted Hf(2)TeC. The obtained values of lattice parameters, elastic constants, and elastic moduli of Hf(2)SB, Hf(2)SC, Hf(2)SeB, Hf(2)SeC, and Hf(2)TeB showed fair agreement with earlier studies, whereas the values of the aforementioned parameters for the predicted Hf(2)TeC exhibit a good consequence of B replacement by C. The anisotropic mechanical properties are exhibited by the considered MAX phases. The metallic nature and its anisotropic behavior were revealed by the electronic band structure and density of states. The analysis of the thermal properties—Debye temperature, melting temperature, minimum thermal conductivity, and Grüneisen parameter—confirmed that the carbide phases were more suited than the boride phases considered herein. The MAX phase’s response to incoming photons further demonstrated that they were metallic. Their suitability for use as coating materials to prevent solar heating was demonstrated by the reflectivity spectra. Additionally, this study demonstrated the impact of B replacing C in the MAX phases.
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spelling pubmed-105006862023-09-15 DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te] Islam, Jakiul Islam, Md. Didarul Ali, Md. Ashraf Akter, Hasina Hossain, Aslam Biswas, Mautushi Hossain, Md. Mukter Uddin, Md. Mohi Naqib, Saleh Hasan ACS Omega [Image: see text] In this work, density functional theory (DFT)-based calculations were performed to compute the physical properties (structural stability, mechanical behavior, and electronic, thermodynamic, and optical properties) of synthesized MAX phases Hf(2)SB, Hf(2)SC, Hf(2)SeB, Hf(2)SeC, and Hf(2)TeB and the as-yet-undiscovered MAX carbide phase Hf(2)TeC. Calculations of formation energy, phonon dispersion curves, and elastic constants confirmed the stability of the aforementioned compounds, including the predicted Hf(2)TeC. The obtained values of lattice parameters, elastic constants, and elastic moduli of Hf(2)SB, Hf(2)SC, Hf(2)SeB, Hf(2)SeC, and Hf(2)TeB showed fair agreement with earlier studies, whereas the values of the aforementioned parameters for the predicted Hf(2)TeC exhibit a good consequence of B replacement by C. The anisotropic mechanical properties are exhibited by the considered MAX phases. The metallic nature and its anisotropic behavior were revealed by the electronic band structure and density of states. The analysis of the thermal properties—Debye temperature, melting temperature, minimum thermal conductivity, and Grüneisen parameter—confirmed that the carbide phases were more suited than the boride phases considered herein. The MAX phase’s response to incoming photons further demonstrated that they were metallic. Their suitability for use as coating materials to prevent solar heating was demonstrated by the reflectivity spectra. Additionally, this study demonstrated the impact of B replacing C in the MAX phases. American Chemical Society 2023-08-29 /pmc/articles/PMC10500686/ /pubmed/37720781 http://dx.doi.org/10.1021/acsomega.3c04283 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Islam, Jakiul
Islam, Md. Didarul
Ali, Md. Ashraf
Akter, Hasina
Hossain, Aslam
Biswas, Mautushi
Hossain, Md. Mukter
Uddin, Md. Mohi
Naqib, Saleh Hasan
DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te]
title DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te]
title_full DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te]
title_fullStr DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te]
title_full_unstemmed DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te]
title_short DFT Insights into MAX Phase Borides Hf(2)AB [A = S, Se, Te] in Comparison with MAX Phase Carbides Hf(2)AC [A = S, Se, Te]
title_sort dft insights into max phase borides hf(2)ab [a = s, se, te] in comparison with max phase carbides hf(2)ac [a = s, se, te]
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10500686/
https://www.ncbi.nlm.nih.gov/pubmed/37720781
http://dx.doi.org/10.1021/acsomega.3c04283
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