Observation and control of hybrid spin-wave-Meissner-current transport modes
arXiv:2307.07581 · doi:10.1126/science.adj7576
Abstract
Superconductors are materials with zero electrical resistivity and the ability to expel magnetic fields known as the Meissner effect. Their dissipationless diamagnetic response is central to magnetic levitation and circuits such as quantum interference devices. Here, we use superconducting diamagnetism to shape the magnetic environment governing the transport of spin waves - collective spin excitations in magnets that are promising on-chip signal carriers - in a thin-film magnet. Using diamond-based magnetic imaging, we observe hybridized spin-wave-Meissner-current transport modes with strongly altered, temperature-tunable wavelengths. We extract the temperature-dependent London penetration depth from the wavelength shifts and realize local control of spin-wave refraction using a focused laser. Our results demonstrate the versatility of superconductor-manipulated spin-wave transport and have potential applications in spin-wave gratings, filters, crystals and cavities.
main: 8 pages, 5 figures, supp: 15 pages, 6 figures
References in corpus (9)
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- Electromagnetic Proximity Effect: Superconducting Magnonics and Beyond
- Spin-wave confinement in a hybrid superconductor-ferrimagnet nanostructure
- Damping Enhancement in YIG at Millikelvin Temperatures due to GGG Substrate
- Current-Controlled Magnon-Magnon Coupling in an On-Chip Cavity Resonator
- Tunable magnonic crystal in a hybrid superconductor--ferrimagnet nanostructure
- Ultra-strong coupling of two ferromagnets via Meissner currents
- Role of Oxygen in Laser Induced Contamination at Diamond-Vacuum Interfaces
- Superluminal Propagation of Composite Collective Modes in Superconductor-Ferromagnet Heterostructures
- Isofrequency spin-wave imaging using color center magnetometry for magnon spintronics
- Nucleation and Arrangement of Abrikosov Vortices in Hybrid Superconductor-Ferromagnetic Nanostructure
- Laser-cut Patterned, Micrometer-thin Diamond Membranes with Coherent Color Centers for Open Microcavities