Physical Review Letters · 2017 · 96 citations · 64 references
Quantum PhotonicsEngineeringPure DephasingCavity QedQuantum EngineeringSemiconductor Quantum DotPhonon-induced DecoherenceNanophotonicsCavity Quantum ElectrodynamicsPhotonicsQuantum SciencePhysicsQuantum DeviceZero-phonon LineSolid-state Single-photon SourcesQuantum OpticNatural SciencesApplied PhysicsQuantum Photonic DeviceOptoelectronics
Solid‑state emitters are promising integrated single‑photon sources, yet phonons degrade photon indistinguishability via pure dephasing of the zero‑phonon line and phonon‑assisted emission. The authors investigate how temperature affects the indistinguishability of photons emitted by a semiconductor quantum dot coupled to a microcavity. They perform a combined theoretical and experimental study and provide design guidelines for optimal cavity configurations that suppress phonon‑induced decoherence. Strong coupling to a high‑quality‑factor cavity reduces both pure dephasing and phonon sideband effects, yielding indistinguishabilities above 97 % up to 18 K and more than 99 % (76 %) for the full emission spectrum at 0 K (20 K).
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.
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