Resonant Domain Wall Dynamics in a Three‐Dimensional Magnetic Nano Double Helix

P Pamela Morales‐Fernández (Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany) I Iason Konstantinos‐Douveas (Faculty of Physics University of Vienna Strudlhofgasse 4 Vienna 1090 Austria) C Claas Abert E Elina Zhakina (Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany) S Sandra Ruiz‐Gómez (Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany) C Claudia Fernández‐González (Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany) L Luke Alexander Turnbull (Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany) S Sebastian Wintz M Markus König (Max Planck Institute for Chemical Physics of Solids) S Simone Finizio M Markus Weigand N Naëmi Leo (Department of Physics Loughborough University Epinal Way Loughborough LE11 3TU United Kingdom of Great Britain and Northern Ireland) D Dieter Suess A Aurelio Hierro‐Rodríguez (Departamento de Física, Facultad de Ciencias Universidad De Oviedo C/ Federico García Lorca 18 Oviedo 33007 Asturias Spain) A Amalio Fernández‐Pacheco (Institute of Applied Physics Technische Universität Wien Wiedner Hauptstraße 8‐10 Vienna 1040 Austria) C Claire Donnelly

Abstract

ABSTRACT The extension of magnetic nanostructures to three dimensions (3D) has been predicted to result in phenomena such as non‐reciprocal collective dynamics and ultra‐fast motion of textures. However, while first indications of dynamics in 3D have been explored in microstructures, the experimental investigation of magnetization dynamics in complex‐shaped 3D nanostructures remains challenging. Here, 3D nanoprinted cobalt double‐helix nanostructures are investigated with time‐resolved X‐ray microscopy at nanoscale spatial and picosecond temporal resolution to study their magnetization dynamics. Within the helices, the dynamics of coupled domain walls are observed, and a clear resonant response identified. Micromagnetic simulations confirm that the experimentally observed resonance arises from a harmonic oscillatory mode of the coupled domain walls and predict additional higher‐frequency modes, revealing a rich dynamic spectrum. By systematically varying the helix geometry in simulations, we find that the resonant modes can be engineered. This geometrical control promises an alternative to conventional tuning strategies based on tailored magnetic anisotropies, DC bias, or externally applied fields. Together, these experimental and simulated results of magnetization dynamics in complex 3D nanostructures provide a pathway for programmable functionalities, relevant for potential technologies including information processing architectures based on tunable spin texture dynamics.

Article Details

Volume / Issue Vol. 1, Issue 1
Published March 25, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

P

Pamela Morales‐Fernández

Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany

I

Iason Konstantinos‐Douveas

Faculty of Physics University of Vienna Strudlhofgasse 4 Vienna 1090 Austria

C

Claas Abert

E

Elina Zhakina

Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany

S

Sandra Ruiz‐Gómez

Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany

C

Claudia Fernández‐González

Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany

L

Luke Alexander Turnbull

Max Planck Institute for Chemical Physics of Solids Nöthnitzer Str. 40 Dresden Germany

S

Sebastian Wintz

M

Markus König

Max Planck Institute for Chemical Physics of Solids

S

Simone Finizio

M

Markus Weigand

N

Naëmi Leo

Department of Physics Loughborough University Epinal Way Loughborough LE11 3TU United Kingdom of Great Britain and Northern Ireland

D

Dieter Suess

A

Aurelio Hierro‐Rodríguez

Departamento de Física, Facultad de Ciencias Universidad De Oviedo C/ Federico García Lorca 18 Oviedo 33007 Asturias Spain

A

Amalio Fernández‐Pacheco

Institute of Applied Physics Technische Universität Wien Wiedner Hauptstraße 8‐10 Vienna 1040 Austria

C

Claire Donnelly