Resonant subwavelength control of the phase of spin waves reflected from a Gires–Tournois interferometer
Резонансное субволновое управление фазой спиновых волн, отражённых от интерферометра Жирсе–Турнуа
2021-02-24
SCID: 54.1/ew8te94w
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Gires–Tournois interferometerferromagnetic stripe–film bilayermagnonic Gires–Tournois interferometerspin-wave phase controlsubwavelength resonator
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Abstract (AI)
Subwavelength resonant elements are essential building blocks of metamaterials and metasurfaces, which have revolutionized photonics. Despite similarities between different wave phenomena, other types of interactions can make subwavelength coupling significantly distinct; its investigation in their context is therefore of interest both from the physics and applications perspective. In this work, we demonstrate a fully magnonic Gires-Tournois interferometer based on a subwavelength resonator made of a narrow ferromagnetic stripe lying above the edge of a ferromagnetic film. The bilayer formed by the stripe and the film underneath supports two propagative spin-wave modes, one strongly coupled with spin waves propagating in the rest of the film and another almost completely reflected at the ends of the bilayer. When the Fabry-Perot resonance conditions for this mode are satisfied, the weak coupling between both modes is sufficient to achieve high sensitivity of the phase of waves reflected from the resonator to the stripe width and, more interestingly, also to the stripe-film separation. Such spin-wave phase manipulation capabilities are a prerequisite for the design of spin-wave metasurfaces and may stimulate development of magnonic logic devices and sensors detecting magnetic nanoparticles.
Key Findings
1
A fully magnonic Gires–Tournois interferometer is demonstrated using a subwavelength resonator formed by a narrow ferromagnetic stripe above the edge of a ferromagnetic film.
2
The reflected spin-wave phase is also highly sensitive to the stripe–film separation, enabling subwavelength phase control.
3
The stripe-film bilayer supports two propagative spin-wave modes: one strongly coupled to film spin waves and one almost completely reflected at the bilayer ends.
4
These spin-wave phase manipulation capabilities enable design of spin-wave metasurfaces and could advance magnonic logic devices and magnetic nanoparticle sensors.
5
When Fabry–Perot resonance conditions are met for the nearly-reflected mode, weak coupling between modes yields high sensitivity of the reflected spin-wave phase to stripe width.
Research Object
Magnonic Gires–Tournois interferometer consisting of a subwavelength resonator (narrow ferromagnetic stripe) above the edge of a ferromagnetic film forming a bilayer supporting two propagating spin-wave modes
Research Subject
Resonant subwavelength control of the phase of spin waves reflected from the resonator, including sensitivity of reflected-wave phase to stripe width and stripe–film separation via Fabry–Pérot resonance and weak intermode coupling
Publication Details
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2021-02-24
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