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  5. Atomistic simulations of dislocation mobility in refractory high-entropy alloys and the effect of chemical short-range order

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Article
English
2021

Atomistic simulations of dislocation mobility in refractory high-entropy alloys and the effect of chemical short-range order

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English
2021
Nature Communications
Vol 12 (1)
DOI: 10.1038/s41467-021-25134-0

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Robert O. Ritchie
Robert O. Ritchie

University of California, Berkeley

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Sheng Yin
Yunxing Zuo
Anas Abu-Odeh
+6 more

Abstract

Refractory high-entropy alloys (RHEAs) are designed for high elevated-temperature strength, with both edge and screw dislocations playing an important role for plastic deformation. However, they can also display a significant energetic driving force for chemical short-range ordering (SRO). Here, we investigate mechanisms underlying the mobilities of screw and edge dislocations in the body-centered cubic MoNbTaW RHEA over a wide temperature range using extensive molecular dynamics simulations based on a highly-accurate machine-learning interatomic potential. Further, we specifically evaluate how these mechanisms are affected by the presence of SRO. The mobility of edge dislocations is found to be enhanced by the presence of SRO, whereas the rate of double-kink nucleation in the motion of screw dislocations is reduced, although this influence of SRO appears to be attenuated at increasing temperature. Independent of the presence of SRO, a cross-slip locking mechanism is observed for the motion of screws, which provides for extra strengthening for refractory high-entropy alloy system.

How to cite this publication

Sheng Yin, Yunxing Zuo, Anas Abu-Odeh, Hui Zheng, Xiangguo Li, Jun Ding, Shyue Ping Ong, Mark Asta, Robert O. Ritchie (2021). Atomistic simulations of dislocation mobility in refractory high-entropy alloys and the effect of chemical short-range order. Nature Communications, 12(1), DOI: 10.1038/s41467-021-25134-0.

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Publication Details

Type

Article

Year

2021

Authors

9

Datasets

0

Total Files

0

Language

English

Journal

Nature Communications

DOI

10.1038/s41467-021-25134-0

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