Observation of attractor transitions in active magnon-polaritons under microwatt drives
Hao Wu, Qichun Liu, Yuanbin Fan, Yulong Liu, Qing Zhao

TL;DR
This study demonstrates low-power, controlled attractor transitions in active magnon-polaritons, revealing complex nonlinear dynamics and potential applications in microwave signal processing and sensing.
Contribution
First experimental observation of attractor transitions in active magnon-polaritons driven by internal feedback, enabling low-power nonlinear microwave phenomena.
Findings
Observed explosive bistability growth at microwatt power levels.
Detected multifrequency limit cycles and chaotic spectra.
Achieved magnetic-field-triggered spectral shifts up to 162 times the gyromagnetic response.
Abstract
Magnon-polaritons provide a room-temperature platform for investigating nonlinear cavity quantum electrodynamics in the microwave domain, but experimentally observing controlled transitions among distinct nonlinear attractors remains challenging in conventional passive systems, where strong external driving is usually required. Here we report the observation of attractor transitions in an active magnon-polariton formed by a self-oscillating microwave cavity coupled to a yttrium iron garne (YIG) sphere. The feedback loop supplies an internal microwave drive, while Kerr frequency pulling and Suhl-mediated magnon-magnon scattering produce an enhanced effective nonlinearity. Stability analysis using experimentally calibrated parameters reveals a rich fixed-point (FP) landscape with multiple unstable-FP phases and a triple-point region. By tuning gain across these phases, we observe the…
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