Field-driven triggering of self-induced Floquet magnons in a magnetic vortex

Fuente: arXiv
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Seeger, R. Lopes, Philippe, G., Jenkins, A., Benetti, L. C., Schulman, A., Ferreira, R., Kim, J. -V., Devolder, T.
Format: Preprint
Publié: 2026
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866917403149991936
author Seeger, R. Lopes
Philippe, G.
Jenkins, A.
Benetti, L. C.
Schulman, A.
Ferreira, R.
Kim, J. -V.
Devolder, T.
author_facet Seeger, R. Lopes
Philippe, G.
Jenkins, A.
Benetti, L. C.
Schulman, A.
Ferreira, R.
Kim, J. -V.
Devolder, T.
contents We report the experimental control of Floquet magnons in a magnetic vortex. Using microwave spectroscopy of vortex state magnetic tunnel junctions (MTJs), we find that self-induced Floquet sidebands form frequency combs whose existence depend on the vortex core orbit. By shifting the vortex core with an applied magnetic field, we switch the system between regular and Floquet magnons at identical drive conditions, demonstrating hysteretic control of the Floquet spectrum. A nonlinear vortex-magnon model shows that this behavior originates from multiple stable vortex gyration radii created by Floquet-mediated feedback. These results establish magnetic state initialization as a means to switch between regular and Floquet magnons.
format Preprint
id arxiv_https___arxiv_org_abs_2604_11438
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Field-driven triggering of self-induced Floquet magnons in a magnetic vortex
Seeger, R. Lopes
Philippe, G.
Jenkins, A.
Benetti, L. C.
Schulman, A.
Ferreira, R.
Kim, J. -V.
Devolder, T.
Materials Science
We report the experimental control of Floquet magnons in a magnetic vortex. Using microwave spectroscopy of vortex state magnetic tunnel junctions (MTJs), we find that self-induced Floquet sidebands form frequency combs whose existence depend on the vortex core orbit. By shifting the vortex core with an applied magnetic field, we switch the system between regular and Floquet magnons at identical drive conditions, demonstrating hysteretic control of the Floquet spectrum. A nonlinear vortex-magnon model shows that this behavior originates from multiple stable vortex gyration radii created by Floquet-mediated feedback. These results establish magnetic state initialization as a means to switch between regular and Floquet magnons.
title Field-driven triggering of self-induced Floquet magnons in a magnetic vortex
topic Materials Science
url https://arxiv.org/abs/2604.11438