Domain‐Wall Circulation Gating and Pinning via Compositional Engineering of Cylindrical Nanowires

ABSTRACT Spintronic devices based on cylindrical magnetic nanowires have been proposed as a route toward three–dimensional (3D) information storage and processing by harnessing the controlled motion of domain walls (DWs). In this geometry, the Bloch‐point wall (BPW) is the characteristic DW type. It features a curling of magnetization around a Bloch Point singularity, a topology that has been predicted to enable propagation at high speed without undergoing a Walker breakdown. We demonstrate that compositional modulations of larger magnetization, which host spontaneous curling states while the rest of the wire remains axial, fulfil a dual role: they act as deterministic pinning sites and as active gates for BPW circulation. Combining magnetic transmission X–ray microscopy and micromagnetic simulations, we reveal that DW–modulation interactions are the result of a superposition of long–range magnetostatic repulsion and short–range, circulation–dependent exchange contributions: parallel circulation produces an attractive well, while opposite circulation generates a repulsive barrier. This results in DW pinning at or near a compositional modulation. A DW's internal circulation can be inverted upon traversing a modulation, enabling on–demand switching of its circulation state. This dual mechanism demonstrates that both DW position and circulation can be tuned in a controlled manner, with potential implications for multistate spintronic devices.

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Journal
Small
Published
2026-10-08
DOI
https://doi.org/10.1002/smll.202514357
Primary Topic
Magnetic properties of thin films
Type
article
Field-Weighted Citation Impact
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article

Domain‐Wall Circulation Gating and Pinning via Compositional Engineering of Cylindrical Nanowires

C. Thirion, Rachid Belkhou, Jean-Christophe Toussaint, Olivier Fruchart et al.
Small
Magnetic properties of thin films
article

Domain‐Wall Circulation Gating and Pinning via Compositional Engineering of Cylindrical Nanowires

C. Thirion, Rachid Belkhou, Jean-Christophe Toussaint, Olivier Fruchart, Michael H Foerster, Aurélien Massebœuf, Núria Bagués, Lucía Aballe, Daria Gusakova, Sandra Ruiz‐Gómez, Laura Álvaro-Gómez, Eva Pereiro, Lucas Pérez, Claudia Fernández‐González, Nicolas Mille
article en

Abstract

ABSTRACT Spintronic devices based on cylindrical magnetic nanowires have been proposed as a route toward three–dimensional (3D) information storage and processing by harnessing the controlled motion of domain walls (DWs). In this geometry, the Bloch‐point wall (BPW) is the characteristic DW type. It features a curling of magnetization around a Bloch Point singularity, a topology that has been predicted to enable propagation at high speed without undergoing a Walker breakdown. We demonstrate that compositional modulations of larger magnetization, which host spontaneous curling states while the rest of the wire remains axial, fulfil a dual role: they act as deterministic pinning sites and as active gates for BPW circulation. Combining magnetic transmission X–ray microscopy and micromagnetic simulations, we reveal that DW–modulation interactions are the result of a superposition of long–range magnetostatic repulsion and short–range, circulation–dependent exchange contributions: parallel circulation produces an attractive well, while opposite circulation generates a repulsive barrier. This results in DW pinning at or near a compositional modulation. A DW's internal circulation can be inverted upon traversing a modulation, enabling on–demand switching of its circulation state. This dual mechanism demonstrates that both DW position and circulation can be tuned in a controlled manner, with potential implications for multistate spintronic devices.

Small
Madrid Institute for Advanced Studies (ES), Universidad Complutense de Madrid (ES), Centre National de la Recherche Scientifique (FR), Commissariat à l'Énergie Atomique et aux Énergies Alternatives (FR), Synchrotron soleil (FR), ALBA Synchrotron (Spain) (ES), CEA Grenoble (FR), Spintronique et Technologie des Composants (FR), Institut Néel (FR), Université Grenoble Alpes (FR)
Openalex Percentile: Top 19%
Magnetic properties of thin films
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