Scaling-up optical quantum technologies requires a combination of highly efficient multi-photon sources and integrated waveguide components. Here, we interface these scalable platforms, demonstrating high-rate three-photon interference with a quantum dot based multi-photon source and a reconfigurable photonic chip on glass. We actively demultiplex the temporal train of single photons obtained from a quantum emitter to generate a 3.8 × 10 s three-photon source, which is then sent to the input of a tunable tritter circuit, demonstrating the on-chip quantum interference of three indistinguishable single photons. We show via pseudo number-resolving photon detection characterizing the output distribution that this first combination of scalable sources and reconfigurable photonic circuits compares favorably in performance with respect to previous implementations. Our detailed loss-budget shows that merging solid-state multi-photon sources and reconfigurable photonic chips could allow 10-photon experiments on chip at ~40 s rate in a foreseeable future.

Interfacing scalable photonic platforms: Solid-state based multi-photon interference in a reconfigurable glass chip

Coppola G;Crespi A;Osellame R;
2019

Abstract

Scaling-up optical quantum technologies requires a combination of highly efficient multi-photon sources and integrated waveguide components. Here, we interface these scalable platforms, demonstrating high-rate three-photon interference with a quantum dot based multi-photon source and a reconfigurable photonic chip on glass. We actively demultiplex the temporal train of single photons obtained from a quantum emitter to generate a 3.8 × 10 s three-photon source, which is then sent to the input of a tunable tritter circuit, demonstrating the on-chip quantum interference of three indistinguishable single photons. We show via pseudo number-resolving photon detection characterizing the output distribution that this first combination of scalable sources and reconfigurable photonic circuits compares favorably in performance with respect to previous implementations. Our detailed loss-budget shows that merging solid-state multi-photon sources and reconfigurable photonic chips could allow 10-photon experiments on chip at ~40 s rate in a foreseeable future.
2019
Istituto di fotonica e nanotecnologie - IFN
Inglese
6
12
1471
1477
http://www.scopus.com/record/display.url?eid=2-s2.0-85076635148&origin=inward
Sì, ma tipo non specificato
Single photon source
Quantum dot
integrated photonic circuits
femtosecond laser writing
2
info:eu-repo/semantics/article
262
Antón, C.; Loredo, J. C.; Coppola, G.; Ollivier, H.; Viggianiello, N.; Harouri, A.; Somaschi, N.; Crespi, A.; Sagnes, I.; Lemaître, A.; Lanco, L.; Ose...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/376779
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