Design Kinetic Parameters for Improved Resilience of Materials under Irradiation

Fuente: arXiv
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Main Authors: Nahavandian, Mohammadhossein, Aydogan, Eda, Byggmästar, Jesper, Tunes, Matheus A., Martinez, Enrique, El-Atwani, Osman
Format: Preprint
Published: 2024
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author Nahavandian, Mohammadhossein
Aydogan, Eda
Byggmästar, Jesper
Tunes, Matheus A.
Martinez, Enrique
El-Atwani, Osman
author_facet Nahavandian, Mohammadhossein
Aydogan, Eda
Byggmästar, Jesper
Tunes, Matheus A.
Martinez, Enrique
El-Atwani, Osman
contents High entropy alloys (HEAs) have captured much attention in recent years due to their conceivably improved radiation resistance compared to pure metals and traditional alloys. However, among HEAs, there are millions of design possibilities considering all potential compositions. In this study, we develop criteria to design HEAs with improved radiation resilience taking into consideration defect properties to promote interstitial-vacancy recombination. First, we conduct rate theory calculations on defects followed by molecular dynamics (MD) simulations on pure W and W-based multicomponent concentrated alloys. It is found that when the diffusion coefficients for single vacancies and interstitials become similar and the effective migration energies of defects is minimum (maximum diffusivities), defect recombination becomes optimal, and the concentration of defects is significantly reduced. This is supported by MD simulations indicating improved radiation resistance of V- and Cr-based alloys, which satisfy the above-stated criteria. Furthermore, experimental observations also reinforce the proposed approach. This study sheds light on the design criteria for improved radiation resistance and helps material selection without the need of extensive experimental work.
format Preprint
id arxiv_https___arxiv_org_abs_2412_13343
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Design Kinetic Parameters for Improved Resilience of Materials under Irradiation
Nahavandian, Mohammadhossein
Aydogan, Eda
Byggmästar, Jesper
Tunes, Matheus A.
Martinez, Enrique
El-Atwani, Osman
Materials Science
High entropy alloys (HEAs) have captured much attention in recent years due to their conceivably improved radiation resistance compared to pure metals and traditional alloys. However, among HEAs, there are millions of design possibilities considering all potential compositions. In this study, we develop criteria to design HEAs with improved radiation resilience taking into consideration defect properties to promote interstitial-vacancy recombination. First, we conduct rate theory calculations on defects followed by molecular dynamics (MD) simulations on pure W and W-based multicomponent concentrated alloys. It is found that when the diffusion coefficients for single vacancies and interstitials become similar and the effective migration energies of defects is minimum (maximum diffusivities), defect recombination becomes optimal, and the concentration of defects is significantly reduced. This is supported by MD simulations indicating improved radiation resistance of V- and Cr-based alloys, which satisfy the above-stated criteria. Furthermore, experimental observations also reinforce the proposed approach. This study sheds light on the design criteria for improved radiation resistance and helps material selection without the need of extensive experimental work.
title Design Kinetic Parameters for Improved Resilience of Materials under Irradiation
topic Materials Science
url https://arxiv.org/abs/2412.13343