Energy evolution in nanocrystalline iron driven by collision cascades

Fuente: arXiv
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Autores principales: Tolkachev, Ivan, Mason, Daniel R., Boleininger, Max, Ma, Pui-Wai, Hofmann, Felix
Formato: Preprint
Publicado: 2025
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author Tolkachev, Ivan
Mason, Daniel R.
Boleininger, Max
Ma, Pui-Wai
Hofmann, Felix
author_facet Tolkachev, Ivan
Mason, Daniel R.
Boleininger, Max
Ma, Pui-Wai
Hofmann, Felix
contents Nanocrystalline materials are promising candidates for future fusion reactor applications, due to their high density of grain boundaries which may serve as sinks for irradiation induced defects. We use molecular dynamics to simulate collision cascades in nanocrystalline iron and compare these to collision cascades in initially defect free single crystals. We create nanocrystalline samples via Voronoi tessellation of initially randomly placed grain seeds and via severe plastic shearing. An irradiation induced annealing is observed whereby after ~ 2 displacements per atom (dpa), irradiation drives all simulation cells to a single crystalline state. Irradiation-induced defects that distort the lattice generate elastic strain, so we use excess potential energy as a measure of defect content. At low doses, the Voronoi samples feature a few large, low energy grains, whereas the sheared samples show many small, high energy grains due to the high defect and grain boundary content caused by severe deformation. As dose increases beyond 1 dpa however, all nanocrystalline samples converge to a similar behaviour. Excess potential energy mirrors this trend, plateauing above ~ 4 dpa. We hypothesise that the initially pristine cells will also reach a similar plateau after 5 dpa, which is seemingly confirmed by running a single instance of each cell type to 10 dpa. A model is developed to explain the energy evolution.
format Preprint
id arxiv_https___arxiv_org_abs_2510_24324
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Energy evolution in nanocrystalline iron driven by collision cascades
Tolkachev, Ivan
Mason, Daniel R.
Boleininger, Max
Ma, Pui-Wai
Hofmann, Felix
Materials Science
Nanocrystalline materials are promising candidates for future fusion reactor applications, due to their high density of grain boundaries which may serve as sinks for irradiation induced defects. We use molecular dynamics to simulate collision cascades in nanocrystalline iron and compare these to collision cascades in initially defect free single crystals. We create nanocrystalline samples via Voronoi tessellation of initially randomly placed grain seeds and via severe plastic shearing. An irradiation induced annealing is observed whereby after ~ 2 displacements per atom (dpa), irradiation drives all simulation cells to a single crystalline state. Irradiation-induced defects that distort the lattice generate elastic strain, so we use excess potential energy as a measure of defect content. At low doses, the Voronoi samples feature a few large, low energy grains, whereas the sheared samples show many small, high energy grains due to the high defect and grain boundary content caused by severe deformation. As dose increases beyond 1 dpa however, all nanocrystalline samples converge to a similar behaviour. Excess potential energy mirrors this trend, plateauing above ~ 4 dpa. We hypothesise that the initially pristine cells will also reach a similar plateau after 5 dpa, which is seemingly confirmed by running a single instance of each cell type to 10 dpa. A model is developed to explain the energy evolution.
title Energy evolution in nanocrystalline iron driven by collision cascades
topic Materials Science
url https://arxiv.org/abs/2510.24324