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On-chip single photon filtering and multiplexing in hybrid quantum photonic circuits

Author

Listed:
  • Ali W. Elshaari

    (Royal Institute of Technology (KTH)
    Delft University of Technology)

  • Iman Esmaeil Zadeh

    (Delft University of Technology
    Single Quantum)

  • Andreas Fognini

    (Delft University of Technology)

  • Michael E. Reimer

    (University of Waterloo)

  • Dan Dalacu

    (National Research Council of Canada)

  • Philip J. Poole

    (National Research Council of Canada)

  • Val Zwiller

    (Royal Institute of Technology (KTH))

  • Klaus D. Jöns

    (Royal Institute of Technology (KTH))

Abstract

Quantum light plays a pivotal role in modern science and future photonic applications. Since the advent of integrated quantum nanophotonics different material platforms based on III–V nanostructures-, colour centers-, and nonlinear waveguides as on-chip light sources have been investigated. Each platform has unique advantages and limitations; however, all implementations face major challenges with filtering of individual quantum states, scalable integration, deterministic multiplexing of selected quantum emitters, and on-chip excitation suppression. Here we overcome all of these challenges with a hybrid and scalable approach, where single III–V quantum emitters are positioned and deterministically integrated in a complementary metal–oxide–semiconductor-compatible photonic circuit. We demonstrate reconfigurable on-chip single-photon filtering and wavelength division multiplexing with a foot print one million times smaller than similar table-top approaches, while offering excitation suppression of more than 95 dB and efficient routing of single photons over a bandwidth of 40 nm. Our work marks an important step to harvest quantum optical technologies’ full potential.

Suggested Citation

  • Ali W. Elshaari & Iman Esmaeil Zadeh & Andreas Fognini & Michael E. Reimer & Dan Dalacu & Philip J. Poole & Val Zwiller & Klaus D. Jöns, 2017. "On-chip single photon filtering and multiplexing in hybrid quantum photonic circuits," Nature Communications, Nature, vol. 8(1), pages 1-8, December.
  • Handle: RePEc:nat:natcom:v:8:y:2017:i:1:d:10.1038_s41467-017-00486-8
    DOI: 10.1038/s41467-017-00486-8
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