The origin of strings and rings in the atomic dynamics of disordered systems

Fuente: arXiv
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Autori principali: Hussein, Omar, Li, Yang, Mishin, Y.
Natura: Preprint
Pubblicazione: 2024
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author Hussein, Omar
Li, Yang
Mishin, Y.
author_facet Hussein, Omar
Li, Yang
Mishin, Y.
contents It has long been believed that the atomic dynamics in disordered structures, such as undercooled liquids and pre-melted interfaces, are characterized by collective atomic rearrangements in the form of quasi-one-dimensional chains of atomic displacements (strings) and their closed forms (rings). Here, we show by molecular dynamics (MD) simulations that strings involving more than a few atoms do not form by a single collective event. Instead, they represent trajectories of propagating local density perturbations, which we call densitons. The atoms on this trajectory are almost indistinguishable from their environments except for the moving head of the string (densiton). A densiton migrates by either single-atom jumps or a concerted rearrangement of 2-3 atoms. The simulations reveal a remarkable similarity between the strings in disordered and crystalline structures, in which the densitons localize into point defects. This work calls for a significant reinterpretation of the string concept and instead proposes a densiton model of the atomic dynamics.
format Preprint
id arxiv_https___arxiv_org_abs_2411_14610
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The origin of strings and rings in the atomic dynamics of disordered systems
Hussein, Omar
Li, Yang
Mishin, Y.
Soft Condensed Matter
Materials Science
It has long been believed that the atomic dynamics in disordered structures, such as undercooled liquids and pre-melted interfaces, are characterized by collective atomic rearrangements in the form of quasi-one-dimensional chains of atomic displacements (strings) and their closed forms (rings). Here, we show by molecular dynamics (MD) simulations that strings involving more than a few atoms do not form by a single collective event. Instead, they represent trajectories of propagating local density perturbations, which we call densitons. The atoms on this trajectory are almost indistinguishable from their environments except for the moving head of the string (densiton). A densiton migrates by either single-atom jumps or a concerted rearrangement of 2-3 atoms. The simulations reveal a remarkable similarity between the strings in disordered and crystalline structures, in which the densitons localize into point defects. This work calls for a significant reinterpretation of the string concept and instead proposes a densiton model of the atomic dynamics.
title The origin of strings and rings in the atomic dynamics of disordered systems
topic Soft Condensed Matter
Materials Science
url https://arxiv.org/abs/2411.14610