Photonics of topological magnetic textures

Fuente: arXiv
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Hauptverfasser: Jandieri, Vakhtang, Khomeriki, Ramaz, Erni, Daniel, Tsagareli, Nicolas, Li, Qian, Werner, Douglas H., Berakdar, Jamal
Format: Preprint
Veröffentlicht: 2025
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author Jandieri, Vakhtang
Khomeriki, Ramaz
Erni, Daniel
Tsagareli, Nicolas
Li, Qian
Werner, Douglas H.
Berakdar, Jamal
author_facet Jandieri, Vakhtang
Khomeriki, Ramaz
Erni, Daniel
Tsagareli, Nicolas
Li, Qian
Werner, Douglas H.
Berakdar, Jamal
contents Topological textures in magnetically ordered materials are important case studies for fundamental research with promising applications in data science. They can also serve as photonic elements to mold electromagnetic fields endowing them with features inherent to the spin order, as demonstrated analytically and numerically in this work. A self-consistent theory is developed for the interaction of spatially structured electromagnetic fields with non-collinear, topologically non-trivial spin textures. A tractable numerical method is designed and implemented for the calculation of the formed magnetic/photonic textures in the entire simulation space. Numerical illustrations are presented for scattering from point-like singularities, i.e. Bloch points, in the magnetization vector fields, evidencing that the geometry and topology of the magnetic order results in photonic fields that embody orbital angular momentum, chirality as well as magnetoelectric densities. Features of the scattered fields can serve as a fingerprint for the underlying magnetic texture and its dynamics. The findings point to the potential of topological magnetic textures as a route to molding photonic fields.
format Preprint
id arxiv_https___arxiv_org_abs_2512_16870
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Photonics of topological magnetic textures
Jandieri, Vakhtang
Khomeriki, Ramaz
Erni, Daniel
Tsagareli, Nicolas
Li, Qian
Werner, Douglas H.
Berakdar, Jamal
Other Condensed Matter
Applied Physics
Optics
Topological textures in magnetically ordered materials are important case studies for fundamental research with promising applications in data science. They can also serve as photonic elements to mold electromagnetic fields endowing them with features inherent to the spin order, as demonstrated analytically and numerically in this work. A self-consistent theory is developed for the interaction of spatially structured electromagnetic fields with non-collinear, topologically non-trivial spin textures. A tractable numerical method is designed and implemented for the calculation of the formed magnetic/photonic textures in the entire simulation space. Numerical illustrations are presented for scattering from point-like singularities, i.e. Bloch points, in the magnetization vector fields, evidencing that the geometry and topology of the magnetic order results in photonic fields that embody orbital angular momentum, chirality as well as magnetoelectric densities. Features of the scattered fields can serve as a fingerprint for the underlying magnetic texture and its dynamics. The findings point to the potential of topological magnetic textures as a route to molding photonic fields.
title Photonics of topological magnetic textures
topic Other Condensed Matter
Applied Physics
Optics
url https://arxiv.org/abs/2512.16870