Export citation

Export citation

Choose format for download:

Download Citation

    Quantitative imaging of nonlinear spin-wave propagation using diamond quantum sensors

    Kensuke Ogawa1,*, Moeta Tsukamoto1, Yusuke Mori2, Daigo Takafuji2, Junichi Shiogai2,3, Kohei Ueda2,3, Jobu Matsuno2,3, Jun-ichiro Ohe4, Kento Sasaki1 et al.

    Kensuke Kobayashi1,5,6

    • 1Department of Physics, The University of Tokyo, Bunkyo-ku, Tokyo 113-0033, Japan
    • 2Department of Physics, Osaka University, Toyonaka, Osaka 560-0043, Japan
    • 3Division of Spintronics Research Network, Institute for Open and Transdisciplinary Research Initiatives, Osaka University, Suita, Osaka 565-0871, Japan
    • 4Department of Physics, Toho University, 2-2-1 Miyama, Funabashi 274-8510, Japan
    • 5Institute for Physics of Intelligence, The University of Tokyo, Bunkyo-ku, Tokyo 113-0033, Japan
    • 6Trans-Scale Quantum Science Institute, The University of Tokyo, Bunkyo-ku, Tokyo 113-0033, Japan

    • *Contact author: kensuke.ogawa.phys@gmail.com

    Phys. Rev. B 112, 224411 – Published 8 December, 2025

    DOI: https://doi.org/10.1103/ys8d-cnfg

    Abstract

    Spin waves propagating in magnetic materials exhibit nonlinear behavior at large amplitudes due to the competition between excitation and relaxation, providing an attractive platform for exploring nonlinear wave dynamics. In particular, spin waves with a nonzero wave number that carry momentum undergo nonlinear relaxation and experience wave number modulation in the nonlinear regime. This nonlinearity has been observed experimentally—for example, in S. R. Lake et al., Phys. Rev. Appl. 17, 034010 (2022)—but a quantitative comparison with theory has not yet been carried out. Here, we image nonlinear spin-wave propagation in two yttrium iron garnet thin films with distinct spin-wave decay rates using a wide-field quantum diamond microscope. We obtain quantitative distributions of spin-wave amplitude and phase as a function of the excitation microwave strength. As a result, we observe a threshold in the spin-wave amplitude beyond which nonlinear effects become evident and confirm that this threshold is consistent with theoretical predictions based on four-magnon scattering for both samples. Moreover, as the amplitude of the spin waves increases, we observe modulation of the wave number across the field of view. We attribute this modulation primarily to a reduction in the saturation magnetization caused by incoherent spin waves generated by multimagnon scattering. Our quantitative measurements provide a pathway for visualizing nonlinear spin-wave dynamics and are crucial for deepening our understanding of the underlying mechanisms.

    Physics Subject Headings (PhySH)

    Authorization Required

    We need you to provide your credentials before accessing this content.

    Supplemental Material (Subscription Required)

    References (Subscription Required)

    Outline

    Information

    Sign In to Your Journals Account

    Filter

    Filter

    Article Lookup

    Enter a citation