Activation entropy of dislocation glide in body-centered cubic metals from atomistic simulations

Fuente: arXiv
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Autori principali: Allera, Arnaud, Swinburne, Thomas D., Goryaeva, Alexandra M., Bienvenu, Baptiste, Ribeiro, Fabienne, Perez, Michel, Marinica, Mihai-Cosmin, Rodney, David
Natura: Preprint
Pubblicazione: 2024
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author Allera, Arnaud
Swinburne, Thomas D.
Goryaeva, Alexandra M.
Bienvenu, Baptiste
Ribeiro, Fabienne
Perez, Michel
Marinica, Mihai-Cosmin
Rodney, David
author_facet Allera, Arnaud
Swinburne, Thomas D.
Goryaeva, Alexandra M.
Bienvenu, Baptiste
Ribeiro, Fabienne
Perez, Michel
Marinica, Mihai-Cosmin
Rodney, David
contents The activation entropy of dislocation glide, a key process controlling the strength of many metals, is often assumed to be constant or linked to enthalpy through the empirical Meyer-Neldel law-both of which are simplified approximations. In this study, we take a more direct approach by calculating the activation Gibbs energy for kink-pair nucleation on screw dislocations of two body-centered cubic metals, iron and tungsten. To ensure reliability, we develop machine learning interatomic potentials for both metals, carefully trained on dislocation data from density functional theory. Our findings reveal that dislocations undergo harmonic transitions between Peierls valleys, with an activation entropy that remains largely constant, regardless of temperature or applied stress. We use these results to parameterize a thermally-activated model of yield stress, which consistently matches experimental data in both iron and tungsten. Our work challenges recent studies using classical potentials, which report highly varying activation entropies, and suggests that simulations relying on classical potentials-widely used in materials modeling-could be significantly influenced by overestimated entropic effects.
format Preprint
id arxiv_https___arxiv_org_abs_2410_04813
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Activation entropy of dislocation glide in body-centered cubic metals from atomistic simulations
Allera, Arnaud
Swinburne, Thomas D.
Goryaeva, Alexandra M.
Bienvenu, Baptiste
Ribeiro, Fabienne
Perez, Michel
Marinica, Mihai-Cosmin
Rodney, David
Materials Science
The activation entropy of dislocation glide, a key process controlling the strength of many metals, is often assumed to be constant or linked to enthalpy through the empirical Meyer-Neldel law-both of which are simplified approximations. In this study, we take a more direct approach by calculating the activation Gibbs energy for kink-pair nucleation on screw dislocations of two body-centered cubic metals, iron and tungsten. To ensure reliability, we develop machine learning interatomic potentials for both metals, carefully trained on dislocation data from density functional theory. Our findings reveal that dislocations undergo harmonic transitions between Peierls valleys, with an activation entropy that remains largely constant, regardless of temperature or applied stress. We use these results to parameterize a thermally-activated model of yield stress, which consistently matches experimental data in both iron and tungsten. Our work challenges recent studies using classical potentials, which report highly varying activation entropies, and suggests that simulations relying on classical potentials-widely used in materials modeling-could be significantly influenced by overestimated entropic effects.
title Activation entropy of dislocation glide in body-centered cubic metals from atomistic simulations
topic Materials Science
url https://arxiv.org/abs/2410.04813