$\mathcal{PT}$-symmetric cavity magnomechanics with gain-assisted transparency and amplification
Cham Oumie, Wu-Ming Liu, Kashif Ammar Yasir

TL;DR
This paper explores a parity-time-symmetric cavity magnomechanical system demonstrating tunable transparency, amplification, and non-Lorentzian line shapes, with potential applications in quantum signal processing and sensing.
Contribution
It introduces a non-Hermitian, PT-symmetric cavity magnomechanical platform enabling engineered transparency and amplification effects with tunable group delay.
Findings
Transition from single to multi-window transparency spectrum.
Observation of gain-assisted asymmetric transmission and amplification.
Tunable slow- and fast-light behavior through system parameter adjustments.
Abstract
We investigate magnomechanically induced transparency in a parity-time-symmetric cavity magnomechanical system with traveling-field-induced non-Hermiticity. The setup consists of a microwave cavity mode coupled to magnons in a single-crystal yttrium iron garnet sphere, which in turn are hybridized with a vibrational mechanical mode through magnetostrictive interaction. In the Hermitian regime, strong photon-magnon coupling generates a single transparency window in the cavity transmission, which splits into a doublet when the magnon is coherently hybridized with the mechanical mode via magnomechanical coupling. This establishes a versatile platform in which the transparency spectrum can be engineered from single- to multi-window response using experimentally accessible, scaled magnomechanical interactions. When a non-Hermitian coupling is introduced, the system enters a…
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Taxonomy
TopicsQuantum Mechanics and Non-Hermitian Physics · Mechanical and Optical Resonators · Topological Materials and Phenomena
