Healing of topological defects while crystallizing nanocrystals

Fuente: arXiv
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Main Authors: Dolz, M. I., Kolton, A. B., Fasano, Y.
Format: Preprint
Published: 2026
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author Dolz, M. I.
Kolton, A. B.
Fasano, Y.
author_facet Dolz, M. I.
Kolton, A. B.
Fasano, Y.
contents Understanding the role of confinement while crystallizing nanocrystals is very relevant for predicting their structure and physical properties. With this aim we perform Langevin dynamics simulations of nanocrystals of the model system of few hundred vortices nucleated in micron-sized superconductors. We study the crystallization dynamics and the low-temperature structural properties of vortex nanocrystals nucleated in field-cooling conditions when changing vortex density or elasticity of the system and physical size of the samples. The low-temperature snapshots obtained in simulations present a healing effect at the edges that is in quantitative agreement with experimental data in Bi2Sr2CaCu2O8+δ micron-sized samples. We show that the low-temperature radial distribution of topological defects is a stationary profile frozen at a temperature below the melting line tuned by intrinsic properties of the vortex structure and on the confinement effect. These findings on the dynamics and spatial profile of topological defects can be applied to describe the physical properties of confined soft condensed matter nanocrystals in general.
format Preprint
id arxiv_https___arxiv_org_abs_2604_21105
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Healing of topological defects while crystallizing nanocrystals
Dolz, M. I.
Kolton, A. B.
Fasano, Y.
Superconductivity
Disordered Systems and Neural Networks
Materials Science
Understanding the role of confinement while crystallizing nanocrystals is very relevant for predicting their structure and physical properties. With this aim we perform Langevin dynamics simulations of nanocrystals of the model system of few hundred vortices nucleated in micron-sized superconductors. We study the crystallization dynamics and the low-temperature structural properties of vortex nanocrystals nucleated in field-cooling conditions when changing vortex density or elasticity of the system and physical size of the samples. The low-temperature snapshots obtained in simulations present a healing effect at the edges that is in quantitative agreement with experimental data in Bi2Sr2CaCu2O8+δ micron-sized samples. We show that the low-temperature radial distribution of topological defects is a stationary profile frozen at a temperature below the melting line tuned by intrinsic properties of the vortex structure and on the confinement effect. These findings on the dynamics and spatial profile of topological defects can be applied to describe the physical properties of confined soft condensed matter nanocrystals in general.
title Healing of topological defects while crystallizing nanocrystals
topic Superconductivity
Disordered Systems and Neural Networks
Materials Science
url https://arxiv.org/abs/2604.21105