Continuous generation of single photons with controlled waveform in an ion-trap cavity system
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- 28 October 2004
- journal article
- Published by Springer Nature in Nature
- Vol. 431 (7012) , 1075-1078
- https://doi.org/10.1038/nature02961
Abstract
The controlled production of single photons is of fundamental and practical interest; they represent the lowest excited quantum states of the radiation field, and have applications in quantum cryptography and quantum information processing. Common approaches use the fluorescence of single ions, single molecules, colour centres and semiconductor quantum dots. However, the lack of control over such irreversible emission processes precludes the use of these sources in applications (such as quantum networks) that require coherent exchange of quantum states between atoms and photons. The necessary control may be achieved in principle in cavity quantum electrodynamics. Although this approach has been used for the production of single photons from atoms, such experiments are compromised by limited trapping times, fluctuating atom-field coupling and multi-atom effects. Here we demonstrate a single-photon source based on a strongly localized single ion in an optical cavity. The ion is optimally coupled to a well-defined field mode, resulting in the generation of single-photon pulses with precisely defined shape and timing. We have confirmed the suppression of two-photon events up to the limit imposed by fluctuations in the rate of detector dark counts. The stream of emitted photons is uninterrupted over the storage time of the ion, as demonstrated by a measurement of photon correlations over 90 min.Keywords
This publication has 24 references indexed in Scilit:
- A calcium ion in a cavity as a controlled single-photon sourceNew Journal of Physics, 2004
- Indistinguishable photons from a single-photon deviceNature, 2002
- Deterministic Single-Photon Source for Distributed Quantum NetworkingPhysical Review Letters, 2002
- Single-mode solid-state single photon source based on isolated quantum dots in pillar microcavitiesApplied Physics Letters, 2001
- Generation of Photon Number States on Demand via Cavity Quantum ElectrodynamicsPhysical Review Letters, 2001
- A Quantum Dot Single-Photon Turnstile DeviceScience, 2000
- Efficient Scheme for Two-Atom Entanglement and Quantum Information Processing in Cavity QEDPhysical Review Letters, 2000
- Pulsed Energy-Time Entangled Twin-Photon Source for Quantum CommunicationPhysical Review Letters, 1999
- Deterministic generation of a bit-stream of single-photon pulsesJournal of Modern Optics, 1997
- Nonclassical radiation of a single stored ionPhysical Review Letters, 1987