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Broadband waveguide quantum memory for entangled photons

机译:纠缠光子的宽带波导量子存储器

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摘要

The reversible transfer of quantum states of light into and out of matter constitutes an important building block for future applications of quantum communication: it will allow the synchronization of quantum information, and the construction of quantum repeaters and quantum networks. Much effort has been devoted to the development of such quantum memories, the key property of which is the preservation of entanglement during storage. Here we report the reversible transfer of photon-photon entanglement into entanglement between a photon and a collective atomic excitation in a solid-state device. Towards this end, we employ a thulium-doped lithium niobate waveguide in conjunction with a photon-echo quantum memory protocol4, and increase the spectral acceptance from the current maximum of 100 megahertz to 5 gigahertz. We assess the entanglement-preserving nature of our storage device through Bell inequality violations and by comparing the amount of entanglement contained in the detected photon pairs before and after the reversible transfer. These measurements show, within statistical error, a perfect mapping process. Our broadband quantum memory complements the family of robust, integrated lithium niobate devices. It simplifies frequency-matching of light with matter interfaces in advanced applications of quantum communication, bringing fully quantum-enabled networks a step closer.
机译:光进入和离开物质的量子态的可逆传输构成了量子通信未来应用的重要组成部分:它将允许量子信息的同步,以及量子中继器和量子网络的构建。已经致力于开发这种量子存储器,其主要特性是在存储期间保持纠缠。在这里,我们报告了光子-光子缠结的可逆转移到光子与固态器件中的集体原子激发之间的缠结。为此,我们将掺a的铌酸锂波导与光子回波量子存储协议4结合使用,并将频谱接受度从目前的最大100兆赫兹提高到5兆赫兹。我们通过违反Bell不等式并比较可逆传输前后检测到的光子对中包含的纠缠量,来评估存储设备的纠缠性质。这些测量结果在统计误差范围内显示了完美的映射过程。我们的宽带量子存储器是功能强大的集成铌酸锂设备系列的补充。在量子通信的高级应用中,它简化了光与物质界面的频率匹配,使完全启用量子的网络更加接近。

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  • 来源
    《Nature》 |2011年第7331期|p.512-515|共4页
  • 作者单位

    Institute for Quantum Information Science, and Department of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta. T2N 1N4, Canada;

    Institute for Quantum Information Science, and Department of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta. T2N 1N4, Canada;

    Institute for Quantum Information Science, and Department of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta. T2N 1N4, Canada;

    Institute for Quantum Information Science, and Department of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta. T2N 1N4, Canada;

    Institute for Quantum Information Science, and Department of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta. T2N 1N4, Canada;

    Institute for Quantum Information Science, and Department of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta. T2N 1N4, Canada ,Present address: GAP-Optique, University of Geneva, Rue de I'Ecole-de-Medecine 20,1211 Geneva 4, Switzerland;

    Department of Physics-Applied Physics, University of Paderborn, Warburger Strasse 100,33095 Paderborn, Germany;

    Department of Physics-Applied Physics, University of Paderborn, Warburger Strasse 100,33095 Paderborn, Germany;

    Department of Physics-Applied Physics, University of Paderborn, Warburger Strasse 100,33095 Paderborn, Germany;

    Institute for Quantum Information Science, and Department of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta. T2N 1N4, Canada;

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