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Spectral and Angle-Resolved Magneto-Optical Characterization of Photonic Nanostructures
Published on: November 21, 2019
Microwave-to-optical transduction using magnon-exciton coupling
Pratap Chandra Adak1, Iris E McDaniel2, Suvodeep Paul2
1Department of Physics, City College of New York, New York, NY, USA. padak@ccny.cuny.edu.
Abstract:
Quantum networks require coherent interfaces between microwave-frequency quantum systems and low-loss optical links. However, existing microwave-optical transducers often trade conversion efficiency against added noise, bandwidth and device integrability. Here we use magnon-exciton coupling in the layered antiferromagnet CrSBr to realize coherent microwave-to-optical transduction. Unlike previous magnon-based approaches that rely on intrinsically weak off-resonant magneto-optical effects, our scheme exploits strong light-matter interactions at exciton resonances. Driving the antiferromagnetic resonance with microwaves modulates the resonant excitonic susceptibility and generates coherent optical sidebands, detected using homodyne interferometry. Even in a bulk crystal without cavity enhancement, we observe coherent conversion over an intrinsically broadband ~300-MHz window. Multiple exciton-polariton resonances inherit the magnon-coupled response, indicating a route to broaden the usable optical detuning range and mitigate optical dissipation. Magnon-coupled excitons in layered magnets thus offer a scalable platform for broadband microwave-optical interfaces, with higher cooperativity achievable through reduced magnetic volume and cavity integration.

