Pressure-induced enhancement of mechanical performance in ZrC system

Superhard materials are indispensable for use in cutting and polishing, as well as for nuclear reactor construction. As a candidate for hard material, ZrC has been extensively studied but not in its pressurized phase. Through evolutionary algorithm and density functional theory, we narrowed down the...

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Published in:International Journal of Quantum Chemistry
Main Author: Yong Y.S.; Chang Y.H.R.; Low L.C.; Lim T.L.; Yoon T.L.
Format: Article
Language:English
Published: John Wiley and Sons Inc 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124732078&doi=10.1002%2fqua.26897&partnerID=40&md5=6528b67061628a43fe92bd41b1deb2b8
id 2-s2.0-85124732078
spelling 2-s2.0-85124732078
Yong Y.S.; Chang Y.H.R.; Low L.C.; Lim T.L.; Yoon T.L.
Pressure-induced enhancement of mechanical performance in ZrC system
2022
International Journal of Quantum Chemistry
122
11
10.1002/qua.26897
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124732078&doi=10.1002%2fqua.26897&partnerID=40&md5=6528b67061628a43fe92bd41b1deb2b8
Superhard materials are indispensable for use in cutting and polishing, as well as for nuclear reactor construction. As a candidate for hard material, ZrC has been extensively studied but not in its pressurized phase. Through evolutionary algorithm and density functional theory, we narrowed down the stoichiometry of Zr and C elements at various elevated pressures. The semimetal property of Zr4C4 continues to exist at high pressures but with lower electrical conductivity. Ionic and covalent bonding coexist around the pseudogap for high pressure phases. Both elastic constants and elastic moduli are found to increase steadily with surrounding pressure, connoting the superior mechanical and thermal characteristics of Zr4C4. This can be seen in the increased hardness values, higher melting temperatures, and better machinability indices for Zr4C4 as pressure rises. The predicted G/B and Poison's ratios have both agreed that Zr4C4 exhibits a transition from brittle to ductile behavior when the applied pressure goes above 85 GPa, displaying an overall improved mechanical performance. © 2022 Wiley Periodicals LLC.
John Wiley and Sons Inc
207608
English
Article

author Yong Y.S.; Chang Y.H.R.; Low L.C.; Lim T.L.; Yoon T.L.
spellingShingle Yong Y.S.; Chang Y.H.R.; Low L.C.; Lim T.L.; Yoon T.L.
Pressure-induced enhancement of mechanical performance in ZrC system
author_facet Yong Y.S.; Chang Y.H.R.; Low L.C.; Lim T.L.; Yoon T.L.
author_sort Yong Y.S.; Chang Y.H.R.; Low L.C.; Lim T.L.; Yoon T.L.
title Pressure-induced enhancement of mechanical performance in ZrC system
title_short Pressure-induced enhancement of mechanical performance in ZrC system
title_full Pressure-induced enhancement of mechanical performance in ZrC system
title_fullStr Pressure-induced enhancement of mechanical performance in ZrC system
title_full_unstemmed Pressure-induced enhancement of mechanical performance in ZrC system
title_sort Pressure-induced enhancement of mechanical performance in ZrC system
publishDate 2022
container_title International Journal of Quantum Chemistry
container_volume 122
container_issue 11
doi_str_mv 10.1002/qua.26897
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124732078&doi=10.1002%2fqua.26897&partnerID=40&md5=6528b67061628a43fe92bd41b1deb2b8
description Superhard materials are indispensable for use in cutting and polishing, as well as for nuclear reactor construction. As a candidate for hard material, ZrC has been extensively studied but not in its pressurized phase. Through evolutionary algorithm and density functional theory, we narrowed down the stoichiometry of Zr and C elements at various elevated pressures. The semimetal property of Zr4C4 continues to exist at high pressures but with lower electrical conductivity. Ionic and covalent bonding coexist around the pseudogap for high pressure phases. Both elastic constants and elastic moduli are found to increase steadily with surrounding pressure, connoting the superior mechanical and thermal characteristics of Zr4C4. This can be seen in the increased hardness values, higher melting temperatures, and better machinability indices for Zr4C4 as pressure rises. The predicted G/B and Poison's ratios have both agreed that Zr4C4 exhibits a transition from brittle to ductile behavior when the applied pressure goes above 85 GPa, displaying an overall improved mechanical performance. © 2022 Wiley Periodicals LLC.
publisher John Wiley and Sons Inc
issn 207608
language English
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record_format scopus
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