Dislocation dynamics on deformable surfaces

Abstract We develop a fully coupled theoretical description of dislocation dynamics on deformable crystalline surfaces, using continuum modelling and the amplitude-phase-field crystal (APFC) framework extended to curved geometries. We derive a general kinematic expression for dislocation velocity directly from the complex-amplitude evolution equations, which is also applicable to deformed surfaces through curvature-modified differential operators. From numerical simulations, we show that even small out-of-plane deformations reshape the phenomenology of defect motion through curvature-induced self-propulsion, modified glide directions and non-classical defect–defect interactions. Our results show how surface geometry profoundly influences defect dynamics and establish the surface-APFC model as a powerful framework for predicting and interpreting curvature-defect coupling across a wide range of systems, from stiff but deformable layers to soft matter surfaces and membranes that retain crystalline order.

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Publication Details

Journal
Proceedings of the Royal Society A Mathematical Physical and Engineering Sciences
Published
2026-10-07
DOI
https://doi.org/10.1098/rspa.2026.0141
Primary Topic
Microstructure and mechanical properties
Type
article
Field-Weighted Citation Impact
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article

Dislocation dynamics on deformable surfaces

Luiza Angheluta, Marcello De Donno, Marco Salvalaglio
Proceedings of the Royal Society A Mathematical Physical and Engineering Sciences
Microstructure and mechanical properties
article

Dislocation dynamics on deformable surfaces

Luiza Angheluta, Marcello De Donno, Marco Salvalaglio
article en

Abstract

Abstract We develop a fully coupled theoretical description of dislocation dynamics on deformable crystalline surfaces, using continuum modelling and the amplitude-phase-field crystal (APFC) framework extended to curved geometries. We derive a general kinematic expression for dislocation velocity directly from the complex-amplitude evolution equations, which is also applicable to deformed surfaces through curvature-modified differential operators. From numerical simulations, we show that even small out-of-plane deformations reshape the phenomenology of defect motion through curvature-induced self-propulsion, modified glide directions and non-classical defect–defect interactions. Our results show how surface geometry profoundly influences defect dynamics and establish the surface-APFC model as a powerful framework for predicting and interpreting curvature-defect coupling across a wide range of systems, from stiff but deformable layers to soft matter surfaces and membranes that retain crystalline order.

Proceedings of the Royal Society A Mathematical Physical and Engineering SciencesVol. 482(2347)
University of Oslo (NO), Technische Universität Dresden (DE)
Openalex Percentile: Top 93%
Microstructure and mechanical properties
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