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A solid-state single-photon filter

  • Lorenzo De Santis
  • , Carlos Antón
  • , Bogdan Reznychenko
  • , Niccolo Somaschi
  • , Guillaume Coppola
  • , Jean Senellart
  • , Carmen Gómez
  • , Aristide Lemaître
  • , Isabelle Sagnes
  • , Andrew G. White
  • , Loïc Lanco
  • , Alexia Auffèves
  • , Pascale Senellart
  • CNRS
  • Institut NÉEL
  • LTHE (UMR 5564 CNRS/IRD/Université de Grenoble)
  • Systran-SA
  • University of Queensland
  • Laboratoire de Probabilités et Modèles Aléatoires

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

A strong limitation of linear optical quantum computing is the probabilistic operation of two-quantum-bit gates based on the coalescence of indistinguishable photons. A route to deterministic operation is to exploit the single-photon nonlinearity of an atomic transition. Through engineering of the atom-photon interaction, phase shifters, photon filters and photon-photon gates have been demonstrated with natural atoms. Proofs of concept have been reported with semiconductor quantum dots, yet limited by inefficient atom-photon interfaces and dephasing. Here, we report a highly efficient single-photon filter based on a large optical nonlinearity at the single-photon level, in a near-optimal quantum-dot cavity interface. When probed with coherent light wavepackets, the device shows a record nonlinearity threshold around 0.3 ± 0.1 incident photons. We demonstrate that 80% of the directly reflected light intensity consists of a single-photon Fock state and that the two- and three-photon components are strongly suppressed compared with the single-photon one.

langue originaleAnglais
Pages (de - à)663-667
Nombre de pages5
journalNature Nanotechnology
Volume12
Numéro de publication7
Les DOIs
étatPublié - 1 juil. 2017

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