Skyrmion lattice order controlled by confinement geometry

R Raphael Gruber (Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,) J Jan Rothörl (Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,) S Simon M. Fröhlich (Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,) M Maarten A. Brems (Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,) F Fabian Kammerbauer M Maria-Andromachi Syskaki E Elizabeth M. Jefremovas (Institute of Physics, Johannes Gutenberg University Mainz 1 , Staudingerweg 7, 55128 Mainz,) S Sachin Krishnia (Institute of Physics, Johannes Gutenberg-University Mainz, Mainz, Germany.) A Asle Sudbø (Center for Quantum Spintronics, Department of Physics, Norwegian University of Science and Technology 3 , 7491 Trondheim,) P Peter Virnau (Johannes Gutenberg-Universität, Institut für Physik , Mainz,) M Mathias Kläui (Institute of Physics, Johannes Gutenberg-University Mainz, Mainz, Germany.)

Abstract

Magnetic skyrmions forming two-dimensional (2D) lattices provide a versatile platform for investigating phase transitions predicted by Kosterlitz–Thouless–Halperin–Nelson–Young theory. While 2D melting in skyrmion systems has been demonstrated, achieving controlled ordering in skyrmion lattices remains challenging due to pinning effects from a non-uniform energy landscape, which often results in polycrystalline structures. Skyrmions in thin films, however, offer thermal diffusion with high tunability and can be directly imaged via Kerr microscopy, enabling real-time observation of their dynamics. To regulate lattice order in such flexible systems, we introduce geometric confinements of varying shapes. Combining Kerr microscopy experiments with Thiele model simulations, we demonstrate that confinement geometry critically influences lattice order. Specifically, hexagonal confinements commensurate with the skyrmion lattice stabilize monodomain hexagonal ordering, while incommensurate geometries induce domain formation and reduce overall order. Understanding these boundary-driven effects is essential for advancing the study of 2D phase behavior and for the design of skyrmion-based spintronic applications, ranging from memory devices to unconventional computing architectures.

Article Details

Volume / Issue Vol. 127, Issue 21
Published November 24, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (11)

R

Raphael Gruber

Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,

J

Jan Rothörl

Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,

S

Simon M. Fröhlich

Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,

M

Maarten A. Brems

Institute of Physics, Johannes Gutenberg-Universität Mainz 1 , Staudingerweg 7, 55128 Mainz,

F

Fabian Kammerbauer

M

Maria-Andromachi Syskaki

E

Elizabeth M. Jefremovas

Institute of Physics, Johannes Gutenberg University Mainz 1 , Staudingerweg 7, 55128 Mainz,

S

Sachin Krishnia

Institute of Physics, Johannes Gutenberg-University Mainz, Mainz, Germany.

A

Asle Sudbø

Center for Quantum Spintronics, Department of Physics, Norwegian University of Science and Technology 3 , 7491 Trondheim,

P

Peter Virnau

Johannes Gutenberg-Universität, Institut für Physik , Mainz,

M

Mathias Kläui

Institute of Physics, Johannes Gutenberg-University Mainz, Mainz, Germany.