English

Near-unity coupling efficiency of a quantum emitter to a photonic-crystal waveguide

Quantum Physics 2014-09-29 v3 Optics

Abstract

A quantum emitter efficiently coupled to a nanophotonic waveguide constitutes a promising system for the realization of single-photon transistors, quantum-logic gates based on giant single-photon nonlinearities, and high bit-rate deterministic single-photon sources. The key figure of merit for such devices is the β\beta-factor, which is the probability for an emitted single photon to be channeled into a desired waveguide mode. We report on the experimental achievement of β=98.43±0.04%\beta = 98.43 \pm 0.04\% for a quantum dot coupled to a photonic-crystal waveguide, corresponding to a single-emitter cooperativity of η=62.7±1.5\eta = 62.7 \pm 1.5. This constitutes a nearly ideal photon-matter interface where the quantum dot acts effectively as a 1D "artificial" atom, since it interacts almost exclusively with just a single propagating optical mode. The β\beta-factor is found to be remarkably robust to variations in position and emission wavelength of the quantum dots. Our work demonstrates the extraordinary potential of photonic-crystal waveguides for highly efficient single-photon generation and on-chip photon-photon interaction.

Keywords

Cite

@article{arxiv.1402.2081,
  title  = {Near-unity coupling efficiency of a quantum emitter to a photonic-crystal waveguide},
  author = {M. Arcari and I. Söllner and A. Javadi and S. Lindskov Hansen and S. Mahmoodian and J. Liu and H. Thyrrestrup and E. H. Lee and J. D. Song and S. Stobbe and P. Lodahl},
  journal= {arXiv preprint arXiv:1402.2081},
  year   = {2014}
}