Mumax3-cQED: an extension of Mumax3 to simulate magnon-photon interactions in cavity QED

We present an extension of the well-known micromagnetic package Mumax3 to simulate magnon-polaritons in realistic magnetic materials and nanostructures. Mumax3-cQED leverages the full GPU-accelerated capabilities of Mumax3 to model standard spin-spin interactions and the coupling of magnetic moments to external space- and time-dependent magnetic fields, with the additional unique feature of including the coupling to a cavity. We validate the code against results obtained from the Dicke model in both the paramagnetic and the superradiant phases. We show that hybrid magnon-light states can be calculated, as well as the non-equilibrium dynamics and their approach to equilibrium. In addition, we demonstrate the potential of Mumax3-cQED to reproduce experimental results and design magnon-cavity experiments, including three-dimensional and coplanar waveguide resonators. The code is fully available and will be useful for designing experiments involving microscopic saturated ferromagnets as well as systems featuring spin textures such as domain walls, vortices, or skyrmions.

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Publication Details

Journal
Computer Physics Communications
Published
2026-09-01
DOI
https://doi.org/10.1016/j.cpc.2026.110376
Primary Topic
Atomic and Subatomic Physics Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Mumax3-cQED: an extension of Mumax3 to simulate magnon-photon interactions in cavity QED

Sergio Martínez-Losa del Rincón, Juan Román-Roche, David Zueco, M.J. Pérez et al.
Computer Physics Communications
Atomic and Subatomic Physics Research
article

Mumax3-cQED: an extension of Mumax3 to simulate magnon-photon interactions in cavity QED

Sergio Martínez-Losa del Rincón, Juan Román-Roche, David Zueco, M.J. Pérez, David García‐Pons, Andrés Martín-Megino
article en

Abstract

We present an extension of the well-known micromagnetic package Mumax3 to simulate magnon-polaritons in realistic magnetic materials and nanostructures. Mumax3-cQED leverages the full GPU-accelerated capabilities of Mumax3 to model standard spin-spin interactions and the coupling of magnetic moments to external space- and time-dependent magnetic fields, with the additional unique feature of including the coupling to a cavity. We validate the code against results obtained from the Dicke model in both the paramagnetic and the superradiant phases. We show that hybrid magnon-light states can be calculated, as well as the non-equilibrium dynamics and their approach to equilibrium. In addition, we demonstrate the potential of Mumax3-cQED to reproduce experimental results and design magnon-cavity experiments, including three-dimensional and coplanar waveguide resonators. The code is fully available and will be useful for designing experiments involving microscopic saturated ferromagnets as well as systems featuring spin textures such as domain walls, vortices, or skyrmions.

Computer Physics Communications
Universidad de Zaragoza (ES), Instituto de Nanociencia y Materiales de Aragón (ES)
European Commission, Ministerio de Economía y Competitividad, Gobierno de Aragón, European Research Council, Consejo Superior de Investigaciones Científicas, Agencia Estatal de Investigación
Openalex Percentile: Top 100%
Atomic and Subatomic Physics Research
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Mumax3-cQED: an extension of Mumax3 to simulate magnon-photon interactions in cavity QED — Sergio Martínez-Losa del Rincón, Juan Román-Roche, et al. · Computer Physics Communications (2026) | TGRS Research Map | TGRS