Tunable twin stability and an accurate magnesium interatomic potential for dislocation-twin interactions
We showed that there are two variants of twin boundaries for each twin system in hexagonal close-packed materials in our previous study. In this work we further demonstrate that the mechanical stability of these two twin variants in Mg are controlled by their energies and theoretically tunable. In t...
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Published in | Materials & design Vol. 153; no. C; pp. 232 - 241 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
United Kingdom
Elsevier Ltd
05.09.2018
Elsevier |
Subjects | |
Online Access | Get full text |
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Summary: | We showed that there are two variants of twin boundaries for each twin system in hexagonal close-packed materials in our previous study. In this work we further demonstrate that the mechanical stability of these two twin variants in Mg are controlled by their energies and theoretically tunable. In the second part of this work, we continue to incorporate this information of twin boundaries into a newly developed embedded-atom-method (EAM) potential for pure Mg. In addition to twins, the other important information of dislocations and stacking faults is also included, which renders our potential among one of the rare comprehensively optimized ones. Therefore our potential is supposed to be able to accurately capture the physics of not only single defect but also defect-defect interactions. The defect-defect interactions have not been adequately addressed, since modeling their long-range force fields based on density functional theory is computationally too expensive. The new potential will supply new momentum to the study of defect-defect (such as twin-dislocation) interactions and the defect-controlled mechanical properties in Mg. Our study therefore sheds light on the design of novel Mg alloys with optimized mechanical properties.
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•We find the stability of two variants of twins is reversible and tunable, which is controlled by twin boundary energies.•The tunability represents a potential pathway to design novel Mg alloys with tailored mechanical properties.•A comprehensively optimized potential is developed for Mg that incorporates information of dislocations and twins.•The new potential will provide new momentum to the studies of complex defect-defect interactions in Mg. |
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Bibliography: | USDOE Office of Science (SC), Basic Energy Sciences (BES) (SC-22) AC05-00OR22725 |
ISSN: | 0264-1275 1873-4197 |
DOI: | 10.1016/j.matdes.2018.04.085 |