English

Efficient demultiplexed single-photon source with a quantum dot coupled to a nanophotonic waveguide

Quantum Physics 2019-07-18 v1 Optics

Abstract

Planar nanostructures allow near-ideal extraction of emission from a quantum emitter embedded within, thereby realizing deterministic single-photon sources. Such a source can be transformed into M single-photon sources by implementing active temporal-to-spatial mode demultiplexing. We report on the realization of such a demultiplexed source based on a quantum dot embedded in a nanophotonic waveguide. Efficient outcoupling (>60%) from the waveguide into a single mode optical fiber is obtained with high-efficiency grating couplers. As a proof-of-concept, active demultiplexing into M=4 spatial channels is demonstrated by the use of electro-optic modulators with an end-to-end efficiency of >81% into single-mode fibers. Overall we demonstrate four-photon coincidence rates of >1 Hz even under non-resonant excitation of the quantum dot. The main limitation of the current source is the residual population of other exciton transitions that corresponds to a finite preparation efficiency of the desired transition. We quantitatively extract a preparation efficiency of 15% using the second-order correlation function measurements. The experiment highlights the applicability of planar nanostructures as efficient multiphoton sources through temporal-to-spatial demultiplexing and lays out a clear path way of how to scale up towards demonstrating quantum advantages with the quantum dot sources.

Keywords

Cite

@article{arxiv.1903.08785,
  title  = {Efficient demultiplexed single-photon source with a quantum dot coupled to a nanophotonic waveguide},
  author = {Thomas Hummel and Claudéric Ouellet-Plamondon and Ela Ugur and Irina Kulkova and Toke Lund-Hansen and Matthew A. Broome and Ravitej Uppu and Peter Lodahl},
  journal= {arXiv preprint arXiv:1903.08785},
  year   = {2019}
}

Comments

5 pages, 3 figures

R2 v1 2026-06-23T08:14:32.214Z