English

Purcell-Enhanced, Directional Light-Matter Interaction in a Waveguide-Coupled Nanocavity

Optics 2025-01-20 v1 Applied Physics Quantum Physics

Abstract

We demonstrate electrically tunable, spin-dependent, directional coupling of single photons by embedding quantum dots (QDs) in a waveguide-coupled nanocavity. The directional behavior arises from direction-dependent interference between two cavity modes when coupled to the device waveguides. The small mode volume cavity enables simultaneous Purcell enhancement (10.8±0.7{10.8\pm0.7}) and peak directional contrast (88±1%{88\pm1\%}), exceeding current state-of-the-art waveguide-only systems. We also present a scattering matrix model for the transmission through this structure, alongside a quantum trajectory-based model for predicting the system's directionality, which we use to explain the observed asymmetry in directional contrast seen in QD devices. Furthermore, the nanocavity enables wide-range electrical tuning of the emitter's directional contrast. We present results showing precise tuning of a QD emission line from a directional contrast of 2%{2\%} to 96%{96\%}. In combination, these characteristics make this cavity-waveguide approach promising for use as a building block in directional nanophotonic circuits.

Keywords

Cite

@article{arxiv.2501.10351,
  title  = {Purcell-Enhanced, Directional Light-Matter Interaction in a Waveguide-Coupled Nanocavity},
  author = {Nicholas J. Martin and Dominic Hallett and Mateusz Duda and Luke Hallacy and Elena Callus and Luke Brunswick and René Dost and Edmund Clarke and Pallavi K. Patil and Pieter Kok and Maurice S. Skolnick and Luke R. Wilson},
  journal= {arXiv preprint arXiv:2501.10351},
  year   = {2025}
}
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