Fractal structure, depinning, and hysteresis of dislocations in high-entropy alloys

Fuente: arXiv
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Autori principali: Le, Hoa Thi, Nöhring, Wolfram G., Pastewka, Lars
Natura: Preprint
Pubblicazione: 2024
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author Le, Hoa Thi
Nöhring, Wolfram G.
Pastewka, Lars
author_facet Le, Hoa Thi
Nöhring, Wolfram G.
Pastewka, Lars
contents High-entropy alloys (HEAs) are complex alloys containing multiple elements in high concentrations. Plasticity in HEAs is carried by dislocations, but the random nature of their composition pins dislocations, effectively hindering their motion. We investigate the resulting complex structure of the dislocation in terms of spatial correlation functions, which allow us to draw conclusions on the fractal geometry of the dislocation. At high temperature, where thermal fluctuations dominate, dislocations adopt the structure of a random walk with Hurst exponent $1/2$ or fractal dimension $3/2$. At low temperature we find larger Hurst exponents (lower dimensions), with a crossover to an uncorrelated structure beyond a correlation length. These changes in structure are accompanied by an emergence of hysteresis (and hence pinning) in the motion of the dislocation at low temperature. We use a modified Labusch/Edwards-Wilkinson-model to argue that this correlation length must be an intrinsic property of the HEA. This means dislocations in HEAs are an individual pinning limit, where segments of the dislocation are independently pinned by local distortions of the crystal lattice that are induced by chemical heterogeneity.
format Preprint
id arxiv_https___arxiv_org_abs_2410_21838
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Fractal structure, depinning, and hysteresis of dislocations in high-entropy alloys
Le, Hoa Thi
Nöhring, Wolfram G.
Pastewka, Lars
Materials Science
High-entropy alloys (HEAs) are complex alloys containing multiple elements in high concentrations. Plasticity in HEAs is carried by dislocations, but the random nature of their composition pins dislocations, effectively hindering their motion. We investigate the resulting complex structure of the dislocation in terms of spatial correlation functions, which allow us to draw conclusions on the fractal geometry of the dislocation. At high temperature, where thermal fluctuations dominate, dislocations adopt the structure of a random walk with Hurst exponent $1/2$ or fractal dimension $3/2$. At low temperature we find larger Hurst exponents (lower dimensions), with a crossover to an uncorrelated structure beyond a correlation length. These changes in structure are accompanied by an emergence of hysteresis (and hence pinning) in the motion of the dislocation at low temperature. We use a modified Labusch/Edwards-Wilkinson-model to argue that this correlation length must be an intrinsic property of the HEA. This means dislocations in HEAs are an individual pinning limit, where segments of the dislocation are independently pinned by local distortions of the crystal lattice that are induced by chemical heterogeneity.
title Fractal structure, depinning, and hysteresis of dislocations in high-entropy alloys
topic Materials Science
url https://arxiv.org/abs/2410.21838