• DocumentCode
    1933710
  • Title

    Fabrication and classical characterisation of an integrated optic controlled phase gate

  • Author

    Meany, Thomas ; Biggerstaff, D.N. ; Fedrizzi, Alessandro ; Broome, Matthew A. ; Delanty, M. ; Gilchrist, A. ; Steel, Michael J. ; White, A.G. ; Withford, Michael J.

  • Author_Institution
    Dept. of Phys. & Astron., Macquarie Univ., North Ryde, NSW, Australia
  • fYear
    2013
  • fDate
    12-16 May 2013
  • Firstpage
    1
  • Lastpage
    1
  • Abstract
    Optical quantum computing (QC) increasingly uses integrated optics based experiments which permit circuit compactness and phase stability. However, despite the rapid adaptations of integrated waveguide devices for quantum photonics, initial gate demonstrations operate in post-selection, thus not allowing scaling of a quantum circuit beyond the depth of a single gate. Recently, a number of quantum circuits have been demonstrated using the femtosecond laser direct write (FLDW) technique. This technique induces refractive index change in glass substrates which can form three-dimensional waveguide devices. Here we demonstrate a potentially scalable waveguide gate for QC, a controlled-phase gate or Knill gate, produced using the FLDW technique. This gate produces a phase shift on a target qubit conditional on the state of a control qubit, as shown in Fig. 1(a). It requires four photons for operation, two of which act as the target and control path-encoded qubits and two ancillas which herald the successful operation of the circuit.
  • Keywords
    high-speed optical techniques; integrated optoelectronics; optical fabrication; optical logic; optical waveguides; quantum gates; quantum optics; refractive index; FLDW technique; Knill gate; circuit compactness; classical characterisation; control path-encoded qubit; femtosecond laser direct write technique; glass substrates; integrated optic controlled phase gate; integrated waveguide devices; optical quantum computing; phase shift; phase stability; potentially scalable waveguide gate; quantum circuit; quantum photonics; refractive index; target qubit; three-dimensional waveguide devices; Educational institutions; Logic gates; Optical device fabrication; Optical refraction; Optical variables control; Optical waveguides; Photonics;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Lasers and Electro-Optics Europe (CLEO EUROPE/IQEC), 2013 Conference on and International Quantum Electronics Conference
  • Conference_Location
    Munich
  • Print_ISBN
    978-1-4799-0593-5
  • Type

    conf

  • DOI
    10.1109/CLEOE-IQEC.2013.6801683
  • Filename
    6801683