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This content will become publicly available on September 1, 2026

Title: Tuning magneto-optical zero reflection via dual-channel hybrid magnonics
Multichannel coupling in hybrid systems makes an attractive testbed not only because of the distinct advantages entailed by each constituent mode but also because the opportunity to leverage interference among the various excitation pathways. Here, via combined analytical calculation and experiment, we demonstrate that the phase of the magnetization precession at the interface of a coupled yttrium iron garnet (YIG)/permalloy (Py) bilayer is collectively controlled by the microwave photon field torque and the interlayer exchange torque, manifesting a coherent, dual-channel excitation scheme that effectively tunes the magneto-optical spectrum. The different torque contributions vary with frequency, external bias field, and type of interlayer coupling between YIG and Py, which further results in destructive or constructive interferences between the two excitation channels, and hence selective suppression or amplification of the hybridized magnon modes.  more » « less
Award ID(s):
2426642
PAR ID:
10642885
Author(s) / Creator(s):
; ; ; ; ; ; ; ; ;
Publisher / Repository:
the American Physical Society
Date Published:
Journal Name:
Physical Review Applied
Volume:
24
Issue:
3
ISSN:
2331-7019
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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