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  • Integrated photonic platform for quantum information with continuous variables

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    LenziniPUB6141.pdf (1002.Kb)
    Author(s)
    Lenzini, Francesco
    Janousek, Jiri
    Thearle, Oliver
    Villa, Matteo
    Haylock, Ben
    Kasture, Sachin
    Cui, Liang
    Hoang-Phuong, Phan
    Dzung, Viet Dao
    Yonezawa, Hidehiro
    Lam, Ping Koy
    Huntington, Elanor H
    Lobino, Mirko
    Griffith University Author(s)
    Dao, Dzung V.
    Year published
    2018
    Metadata
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    Abstract
    Integrated quantum photonics provides a scalable platform for the generation, manipulation, and detection of optical quantum states by confining light inside miniaturized waveguide circuits. Here, we show the generation, manipulation, and interferometric stage of homodyne detection of nonclassical light on a single device, a key step toward a fully integrated approach to quantum information with continuous variables. We use a dynamically reconfigurable lithium niobate waveguide network to generate and characterize squeezed vacuum and two-mode entangled states, key resources for several quantum communication and computing ...
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    Integrated quantum photonics provides a scalable platform for the generation, manipulation, and detection of optical quantum states by confining light inside miniaturized waveguide circuits. Here, we show the generation, manipulation, and interferometric stage of homodyne detection of nonclassical light on a single device, a key step toward a fully integrated approach to quantum information with continuous variables. We use a dynamically reconfigurable lithium niobate waveguide network to generate and characterize squeezed vacuum and two-mode entangled states, key resources for several quantum communication and computing protocols. We measure a squeezing level of − 1.38 ± 0.04 dB and demonstrate entanglement by verifying an inseparability criterion I = 0.77 ± 0.02 < 1. Our platform can implement all the processes required for optical quantum technology, and its high nonlinearity and fast reconfigurability make it ideal for the realization of quantum computation with time encoded continuous-variable cluster states.
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    Journal Title
    Science Advances
    Volume
    4
    Issue
    12
    DOI
    https://doi.org/10.1126/sciadv.aat9331
    Copyright Statement
    Copyright © 2018 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC).
    Subject
    Quantum optics and quantum optomechanics
    Integrated quantum photonics
    Optical quantum states
    Miniaturized waveguide circuits
    Homodyne detection
    Continuous variables
    Quantum information
    Lithium niobate waveguide network
    Publication URI
    http://hdl.handle.net/10072/382046
    Collection
    • Journal articles

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