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Inclination-dependent shear-coupling and energy anisotropy in FCC tilt grain boundaries

Blixt, Kevin LU and Hallberg, Håkan LU orcid (2026) In Acta Materialia 315.
Abstract

Inclination-dependent grain boundary (GB) energy and shear-coupled motion are studied for [001] and [111] tilt GBs in face-centered cubic materials using three-dimensional (3D) phase field crystal (PFC) simulations. A large dataset spanning misorientation and inclination space is systematically generated to evaluate trends in GB energy and shear-coupling. GB energy variations broadly follow ideal faceting and predictions by existing models. The shear-coupling response shows strong dependence on crystallography and GB inclination. Comparisons based on different domain sizes indicate that significant structural differences, including facets of different sizes, do not necessarily produce large variations in shear-coupling behavior. The... (More)

Inclination-dependent grain boundary (GB) energy and shear-coupled motion are studied for [001] and [111] tilt GBs in face-centered cubic materials using three-dimensional (3D) phase field crystal (PFC) simulations. A large dataset spanning misorientation and inclination space is systematically generated to evaluate trends in GB energy and shear-coupling. GB energy variations broadly follow ideal faceting and predictions by existing models. The shear-coupling response shows strong dependence on crystallography and GB inclination. Comparisons based on different domain sizes indicate that significant structural differences, including facets of different sizes, do not necessarily produce large variations in shear-coupling behavior. The results also demonstrate the applicability of 3D PFC modeling for systematic studies of inclination-dependent GB properties, extending previous two-dimensional PFC studies.

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author
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organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Faceting, Grain boundaries, Interface structure, Phase field crystal, Shear-coupling
in
Acta Materialia
volume
315
article number
122379
pages
11 pages
publisher
Elsevier
external identifiers
  • scopus:105040759696
ISSN
1873-2453
DOI
10.1016/j.actamat.2026.122379
project
Phase Field Crystal Modeling of Microstructure Mechanics
High-resolution computational modeling of perovskite nanostructures for solar energy applications
language
English
LU publication?
yes
id
dfd118f2-892e-4621-82b9-0df150b8ff24
date added to LUP
2026-06-04 11:04:31
date last changed
2026-08-10 12:14:29
@article{dfd118f2-892e-4621-82b9-0df150b8ff24,
  abstract     = {{<p>Inclination-dependent grain boundary (GB) energy and shear-coupled motion are studied for [001] and [111] tilt GBs in face-centered cubic materials using three-dimensional (3D) phase field crystal (PFC) simulations. A large dataset spanning misorientation and inclination space is systematically generated to evaluate trends in GB energy and shear-coupling. GB energy variations broadly follow ideal faceting and predictions by existing models. The shear-coupling response shows strong dependence on crystallography and GB inclination. Comparisons based on different domain sizes indicate that significant structural differences, including facets of different sizes, do not necessarily produce large variations in shear-coupling behavior. The results also demonstrate the applicability of 3D PFC modeling for systematic studies of inclination-dependent GB properties, extending previous two-dimensional PFC studies.</p>}},
  author       = {{Blixt, Kevin and Hallberg, Håkan}},
  issn         = {{1873-2453}},
  keywords     = {{Faceting; Grain boundaries; Interface structure; Phase field crystal; Shear-coupling}},
  language     = {{eng}},
  publisher    = {{Elsevier}},
  series       = {{Acta Materialia}},
  title        = {{Inclination-dependent shear-coupling and energy anisotropy in FCC tilt grain boundaries}},
  url          = {{http://dx.doi.org/10.1016/j.actamat.2026.122379}},
  doi          = {{10.1016/j.actamat.2026.122379}},
  volume       = {{315}},
  year         = {{2026}},
}