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Excitation of unidirectional exchange spin waves by a nanoscale magnetic grating
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Magnon spintronics is a prosperous field that promises beyond-CMOS technology based on elementary excitations of the magnetic order that act as information carriers for future computational architectures. Unidirectional propagation of spin waves is key to the realization of magnonic logic devices. However, previous efforts to enhance the Damon-Eshbach-type nonreciprocity did not realize (let alone control) purely unidirectional propagation. Here we experimentally demonstrate excitations of unidirectional exchange spin waves by a nanoscale magnetic grating consisting of Co nanowires fabricated on an ultrathin yttrium iron garnet film. We explain and model the nearly perfect unidirectional excitation by the chirality of the magneto-dipolar interactions between the Kittel mode of the nanowires and the exchange spin waves of the film. Reversal of the magnetic configurations of film and nanowire array from parallel to antiparallel changes the direction of the excited spin waves. Our results raise the prospect of a chiral magnonic logic without the need for fragile surface states.
Forward citations
Cited by 3 Pith papers
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Chiral coupling of magnons in waveguides
Chiral magnon-photon coupling in a rectangular waveguide enables nonreciprocal magnon-magnon interactions and edge-localized superradiant modes in chains of ferromagnetic spheres.
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Magnon Accumulation in Chirally Coupled Magnets
Chiral photon-magnon coupling in a waveguide is predicted to drive magnon intensity into one edge of a magnet chain, with amplification over 100-fold as the coupling becomes unidirectional.
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Chiral Pumping of Spin Waves
Dipole coupling between a nanowire and a magnetic film is shown to create unidirectional spin waves and a chiral spin Seebeck effect.
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