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Broadband frequency conversion and shaping of single photons emitted from a nonlinear cavity

Source: Opt. Express 17, 22689 (2010); doi:10.1364/OE.17.022689

Issue Date: February 2010

KEYWORDS and PACS
Keywords
PACS
  • 42.79.-e
    Optical elements, devices, and systems
  • 12.20.-m
    Quantum electrodynamics
  • 42.70.Qs
    Photonic bandgap materials
  • 42.55.Tv
    Photonic crystal lasers and coherent effects
  • 42.50.Ex
    Optical implementations of quantum information processing and transfer
  • 03.67.-a
    Quantum information
  • YEAR: 2009
PUBLICATION DATA
Publisher:
AIP is a member of CrossRef OSA
Much recent effort has focused on coupling individual quantum emitters to optical microcavities in order to produce single photons on demand, enable single-photon optical switching, and implement functional nodes of a quantum network. Techniques to control the bandwidth and frequency of the outgoing single photons are of practical importance, allowing direct emission into telecommunications wavelengths and “hybrid” quantum networks incorporating different emitters. Here, we describe an integrated approach involving a quantum emitter coupled to a nonlinear optical resonator, in which the emission wavelength and pulse shape are controlled using the intra-cavity nonlinearity. Our scheme is general in nature, and demonstrates how the photonic environment of a quantum emitter can be tailored to determine the emission properties. As specific examples, we discuss a high Q-factor, TE-TM double-mode photonic crystal avity design that allows for direct generation of single photons at telecom wavelengths (1425 nm) starting from an InAs/GaAs quantum dot with a 950 nm transition wavelength, and a scheme for direct optical coupling between such a quantum dot and a diamond nitrogen-vacancy center at 637 nm. ©2009 Optical Society of America

(As supplied by publisher.)

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