Control of helix orientation in chiral magnets via lateral confinement

Abstract Helimagnetic materials offer a versatile platform for spin-based device concepts owing to their long-range, tunable spiral order. Here, we demonstrate controlled manipulation of the helimagnetic propagation vector q by geometrical confinement, using FeGe as a model Dzyaloshinskii–Moriya interaction (DMI)-driven chiral magnet. Micromagnetic simulations based on the nonlinear sigma model reveal that open boundaries give rise to a chiral surface twist acting as an effective surface anisotropy, which dictates the preferred helix orientation in the absence of magnetostatic shape effects. This geometry-induced anisotropy is quantitatively captured by an analytical model derived from the DMI boundary condition. Magnetic force microscopy measurements on focused-ion-beam structured FeGe confirm the predicted orientation behavior and establish geometry-controlled helimagnetic order as a robust, tunable mechanism for steering DMI-stabilized spin-spiral states. The concept provides a general route toward device-level control of chiral magnetic order in non-centrosymmetric systems.

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Publication Details

Journal
Communications Physics
Published
2026-09-01
DOI
https://doi.org/10.1038/s42005-026-02808-z
Primary Topic
Magnetic properties of thin films
Type
article
Field-Weighted Citation Impact
0.00

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article

Control of helix orientation in chiral magnets via lateral confinement

Jan Masell, Naoya Kanazawa, Kasper A. Hunnestad, M. I. Stepanova et al.
Communications Physics
Magnetic properties of thin films
article

Control of helix orientation in chiral magnets via lateral confinement

Jan Masell, Naoya Kanazawa, Kasper A. Hunnestad, M. I. Stepanova, Mario Hentschel, Erik Lysne, Maurice Colling, Yoshinori Tokura, Dennis Meier, Somasree Bhattacharjee
article en

Abstract

Abstract Helimagnetic materials offer a versatile platform for spin-based device concepts owing to their long-range, tunable spiral order. Here, we demonstrate controlled manipulation of the helimagnetic propagation vector q by geometrical confinement, using FeGe as a model Dzyaloshinskii–Moriya interaction (DMI)-driven chiral magnet. Micromagnetic simulations based on the nonlinear sigma model reveal that open boundaries give rise to a chiral surface twist acting as an effective surface anisotropy, which dictates the preferred helix orientation in the absence of magnetostatic shape effects. This geometry-induced anisotropy is quantitatively captured by an analytical model derived from the DMI boundary condition. Magnetic force microscopy measurements on focused-ion-beam structured FeGe confirm the predicted orientation behavior and establish geometry-controlled helimagnetic order as a robust, tunable mechanism for steering DMI-stabilized spin-spiral states. The concept provides a general route toward device-level control of chiral magnetic order in non-centrosymmetric systems.

Communications Physics
University of Stuttgart (DE), Karlsruhe Institute of Technology (DE), Norwegian University of Science and Technology (NO), RIKEN Center for Emergent Matter Science (JP), University of Duisburg-Essen (DE), The University of Tokyo (JP), Ruhr University Bochum (DE)
European Commission
Openalex Percentile: Top 90%
Magnetic properties of thin films
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