Experimental realization of a reconfigurable synthetic magnonic lattice in YIG via Floquet engineering that supports Bloch oscillations.
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3 Pith papers cite this work. Polarity classification is still indexing.
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UNVERDICTED 3representative citing papers
Two-frequency modulation of cavity resonance produces qualitatively new features in magnon-polariton spectra compared to single-frequency drives.
Theoretical prediction of ultrastrong magnon-photon hybridization (~100 GHz coupling) in SC/AFM/SC heterostructures at THz, field-tunable between single and dual modes, with superconductor-modulated group velocity.
citing papers explorer
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Experimental Realization of Synthetic Magnonic Lattice via Floquet Engineering
Experimental realization of a reconfigurable synthetic magnonic lattice in YIG via Floquet engineering that supports Bloch oscillations.
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Multifrequency Floquet Engineering of Magnon Polaritons
Two-frequency modulation of cavity resonance produces qualitatively new features in magnon-polariton spectra compared to single-frequency drives.
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Ultrastrong magnon-photon coupling in superconductor/antiferromagnet/superconductor heterostructures at terahertz frequencies
Theoretical prediction of ultrastrong magnon-photon hybridization (~100 GHz coupling) in SC/AFM/SC heterostructures at THz, field-tunable between single and dual modes, with superconductor-modulated group velocity.