Cavity Quantum Electrodynamics Design with Single Photon Emitters in Hexagonal Boron Nitride
Yanan Wang, Jaesung Lee, Jesse Berezovsky, and Philip X.-L. Feng

TL;DR
This paper proposes and numerically investigates a cavity-QED scheme using defect-enabled single photon emitters in h-BN microdisk resonators, highlighting their potential for quantum photonics applications at room temperature.
Contribution
It introduces a cavity-QED design with h-BN SPEs in microdisks, demonstrating strong coupling and practical quantum photonics device potential.
Findings
High coupling ratio g/max(γ,κ) up to 500.
Supports multiple cavity modes for defect coupling.
Potential for room-temperature quantum photonic devices.
Abstract
Hexagonal boron nitride (h-BN), a prevalent insulating crystal for dielectric and encapsulation layers in two-dimensional (2D) nanoelectronics and a structural material in 2D nanoelectromechanical systems (NEMS), has also rapidly emerged as a promising platform for quantum photonics with the recent discovery of optically active defect centers and associated spin states. Combined with measured emission characteristics, here we propose and numerically investigate the cavity quantum electrodynamics (cavity-QED) scheme incorporating these defect-enabled single photon emitters (SPEs) in h-BN microdisk resonators. The whispering-gallery nature of microdisks can support multiple families of cavity resonances with different radial and azimuthal mode indices simultaneously, overcoming the challenges in coinciding a single point defect with the maximum electric field of an optical mode both…
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