Strong coupling between spin waves and a microwave photons in a superconducting resonator

ORAL

Abstract

Hybrid magnonic systems have recently emerged as a new promising direction that exploits the advantages of magnon excitations for processing quantum information [1]. In particular, propagating spin waves can demonstrate intrinsic nonreciprocity and wavelength matching to optical light. The unique properties ofThus, spin waves make them potential for implementingmay enable on-chip microwave isolators and microwave-to-optic transducers with a major benefit of frequency tunability by magnetic field. In this work, we develop a novel hybrid magnonic system with superconducting resonators directly fabricated on top of yttrium iron garnet (YIG) films to achieve coherent coupling with spatially nonuniform spin waves. The YIG films are grown on Y3Sc2Ga3O12 (YSGG) substrate, which eliminates rare-earth elements compared with the commonly used Gd3Ga5O12 (GGG) substrate and thus exhibit zero magnetism at cryogenic temperature [2]. This is crucial for achieving high quality factor for the superconducting resonator fabricated on top. With this new hybrid system, we demonstrate strong coupling between spin waves in the YIG film and photons of the resonator. The small antenna width of the superconducting resonator down to 500 nm allows us to coherently couple to the spatially nonuniform spin wave modes, with a frequency shift from the uniform mode matching well with the width of the antenna and eventually the wavelength of the spin waves. Our results provide a new circuit platform for integrating propagating magnonics with cryogenic superconducting quantum circuits and developing future quantum magnonic functionality with spin wave engineering.

*This Work work at Argonne and UIUC was supported by the U.S. DOE , Office of Science, Basic Energy Sciences, Materials Sciences and Engineering DivisionBES under contract No. DE-SC0022060. Use of the Center for Nanoscale Materials (CNM), an Office of Science user facility, was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy SciencesDOE BES, under Contract no. DE-AC02-06CH11357.

Publication: [1] Y. Li, et al., Hybrid magnonics: Physics, circuits, and applications for coherent information processing, J. Appl. Phys., 128, 130902 (2020)
[2] S. Guo et al., Strong on-Chip Microwave Photon–Magnon Coupling Using Ultralow-Damping Epitaxial Y3Fe5O12 Films at 2 K, Nano Lett. 23, 5055 (2023)

Presenters

  • Yi Li

    • Argonne National Laboratory

Authors

  • Yi Li

    • Argonne National Laboratory
  • Jinho Lim

    • University of Illinois at Urbana-Champaign
  • Tomas Polakovic

    • Argonne National Laboratory
  • Carissa Kiehl

    • Carthage College
  • Ralu Divan

    • Argonne National Laboratory
    • Center for Nanoscale Materials, Argonne National Laboratory
  • Ulrich Welp

    • Argonne National Laboratory
  • Charudatta M Phatak

    • Argonne National Laboratory
  • Jian-Min Zuo

    • University of Illinois at Urbana-Champaign
  • Axel F Hoffmann

    • University of Illinois at Urbana-Champaign
    • UIUC
  • Valentine Novosad

    • Argonne National Laboratory