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Reducing Phonon-Induced Decoherence in Solid-State Single-Photon Sources with Cavity Quantum Electrodynamics

  • T. Grange
  • , N. Somaschi
  • , C. Antón
  • , L. De Santis
  • , G. Coppola
  • , V. Giesz
  • , A. Lemaître
  • , I. Sagnes
  • , A. Auffèves
  • , P. Senellart
  • LTHE (UMR 5564 CNRS/IRD/Université de Grenoble)
  • CNRS
  • Centre de Nanosciences et de Nanotechnologies
  • Université Paris-Saclay

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

99 Citations (Scopus)

Résumé

Solid-state emitters are excellent candidates for developing integrated sources of single photons. Yet, phonons degrade the photon indistinguishability both through pure dephasing of the zero-phonon line and through phonon-assisted emission. Here, we study theoretically and experimentally the indistinguishability of photons emitted by a semiconductor quantum dot in a microcavity as a function of temperature. We show that a large coupling to a high quality factor cavity can simultaneously reduce the effect of both phonon-induced sources of decoherence. It first limits the effect of pure dephasing on the zero-phonon line with indistinguishabilities above 97% up to 18 K. Moreover, it efficiently redirects the phonon sidebands into the zero-phonon line and brings the indistinguishability of the full emission spectrum from 87% (24%) without cavity effect to more than 99% (76%) at 0K (20K). We provide guidelines for optimal cavity designs that further minimize the phonon-induced decoherence.

langue originaleAnglais
Numéro d'article253602
journalPhysical Review Letters
Volume118
Numéro de publication25
Les DOIs
étatPublié - 23 juin 2017
Modification externeOui

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