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Main Authors: Scott, John J R, Lu, Guangming, Rodriguez, Brian J., MacLaren, Ian, Salje, Ekhard K. H., Arredondo, Miryam
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2401.16048
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author Scott, John J R
Lu, Guangming
Rodriguez, Brian J.
MacLaren, Ian
Salje, Ekhard K. H.
Arredondo, Miryam
author_facet Scott, John J R
Lu, Guangming
Rodriguez, Brian J.
MacLaren, Ian
Salje, Ekhard K. H.
Arredondo, Miryam
contents The elastic interaction between kinks (and antikinks) within domain walls plays a pivotal role in shaping the domain structure, and their dynamics. In bulk materials, kinks interact as elastic monopoles, dependent on the distance between walls, and typically characterised by a rigid and straight domain configuration. In this work we investigate the evolution of the domain structure as the sample size decreases, by means of in-situ heating techniques on free-standing samples. A significant transformation is observed: domain walls exhibit pronounced curvature, accompanied by an increase in both domain wall and junction density. This transformation is attributed to the pronounced influence of kinks, inducing sample warping, where 'dipole dipole' interactions are dominant. Moreover, we experimentally identify a critical thickness range that delineates a cross-over between the monopolar and dipolar regimens and corroborated this by detailed atomic simulations. These findings are relevant for in-situ TEM studies and for the development of novel devices based on free-standing ferroic thin films and nanomaterials.
format Preprint
id arxiv_https___arxiv_org_abs_2401_16048
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Evidence of the Monopolar-Dipolar Crossover Regime: A Multiscale Study of Ferroelastic Domains by In-Situ Microscopy Techniques
Scott, John J R
Lu, Guangming
Rodriguez, Brian J.
MacLaren, Ian
Salje, Ekhard K. H.
Arredondo, Miryam
Mesoscale and Nanoscale Physics
The elastic interaction between kinks (and antikinks) within domain walls plays a pivotal role in shaping the domain structure, and their dynamics. In bulk materials, kinks interact as elastic monopoles, dependent on the distance between walls, and typically characterised by a rigid and straight domain configuration. In this work we investigate the evolution of the domain structure as the sample size decreases, by means of in-situ heating techniques on free-standing samples. A significant transformation is observed: domain walls exhibit pronounced curvature, accompanied by an increase in both domain wall and junction density. This transformation is attributed to the pronounced influence of kinks, inducing sample warping, where 'dipole dipole' interactions are dominant. Moreover, we experimentally identify a critical thickness range that delineates a cross-over between the monopolar and dipolar regimens and corroborated this by detailed atomic simulations. These findings are relevant for in-situ TEM studies and for the development of novel devices based on free-standing ferroic thin films and nanomaterials.
title Evidence of the Monopolar-Dipolar Crossover Regime: A Multiscale Study of Ferroelastic Domains by In-Situ Microscopy Techniques
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2401.16048