Floquet engineering in hybrid magnetic quantum systems

The advancement of magnonics has facilitated the utilization of hybrid magnetic systems in quantum technologies. A hybrid magnetic lattice formed by an array of superconducting loops and magnetic particles has been devised as a quantum bus to disseminate quantum resources among magnetic quantum entities serving as nodes of a quantum network. However, the lattice also exerts a decoherence effect on the quantum entities, which impairs its practical performance. By studying the non-Markovian dynamics of nitrogen-vacancy centers and magnon modes coupled to two independent hybrid magnetic lattices, we propose a Floquet-engineering scheme via periodic driving on the quantum entities to suppress decoherence. We find that significant steady-state entanglement is preserved when a Floquet bound state exists in the quasienergy spectrum of the system consisting of each driven quantum entity and its lattice. This result enables a precise manipulation of hybrid magnetic systems and benefits their applications in quantum networks. The hybrid magnetic lattice has been proposed as a quantum bus for integrating the quantum network, but the decoherence depletes the quantum resources carried by it. By studying the non-Markovian dynamics of nitrogen-vacancy centers and magnon modes coupled to two independent hybrid magnetic lattices, the authors demonstrate a Floquet-engineering scheme using periodic driving to suppress decoherence.

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Publication Details

Journal
Communications Physics
Published
2026-05-22
DOI
https://doi.org/10.1038/s42005-026-02695-4
Citations
1
Primary Topic
Magnetic properties of thin films
Type
preprint
Field-Weighted Citation Impact
0.00
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preprint

Floquet engineering in hybrid magnetic quantum systems

Chun-Jie Yang, Jun‐Hong An, Wanli Yang, Si‐Yuan Bai et al.
1 citations
Communications Physics
Magnetic properties of thin films
preprint

Floquet engineering in hybrid magnetic quantum systems

Chun-Jie Yang, Jun‐Hong An, Wanli Yang, Si‐Yuan Bai, Feng-Zhou Ji
preprint en
1 citations

Abstract

The advancement of magnonics has facilitated the utilization of hybrid magnetic systems in quantum technologies. A hybrid magnetic lattice formed by an array of superconducting loops and magnetic particles has been devised as a quantum bus to disseminate quantum resources among magnetic quantum entities serving as nodes of a quantum network. However, the lattice also exerts a decoherence effect on the quantum entities, which impairs its practical performance. By studying the non-Markovian dynamics of nitrogen-vacancy centers and magnon modes coupled to two independent hybrid magnetic lattices, we propose a Floquet-engineering scheme via periodic driving on the quantum entities to suppress decoherence. We find that significant steady-state entanglement is preserved when a Floquet bound state exists in the quasienergy spectrum of the system consisting of each driven quantum entity and its lattice. This result enables a precise manipulation of hybrid magnetic systems and benefits their applications in quantum networks. The hybrid magnetic lattice has been proposed as a quantum bus for integrating the quantum network, but the decoherence depletes the quantum resources carried by it. By studying the non-Markovian dynamics of nitrogen-vacancy centers and magnon modes coupled to two independent hybrid magnetic lattices, the authors demonstrate a Floquet-engineering scheme using periodic driving to suppress decoherence.

Communications Physics
Chinese Academy of Sciences (CN), Center for Theoretical Physics (PL), Wuhan Institute of Physics and Mathematics (CN), Henan Normal University (CN)
Openalex Percentile: Top 99%
Magnetic properties of thin films
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Floquet engineering in hybrid magnetic quantum systems — Chun-Jie Yang, Jun‐Hong An, et al. · Communications Physics (2026) | TGRS Research Map | TGRS