Quantum storage of photonic entanglement in a crystal

被引:389
|
作者
Clausen, Christoph [1 ]
Usmani, Imam [1 ]
Bussieres, Felix [1 ]
Sangouard, Nicolas [1 ]
Afzelius, Mikael [1 ]
de Riedmatten, Hugues [1 ,2 ,3 ]
Gisin, Nicolas [1 ]
机构
[1] Univ Geneva, Appl Phys Grp, CH-1211 Geneva 4, Switzerland
[2] ICFO Inst Ciencies Foton, Barcelona 08860, Spain
[3] ICREA, Barcelona 08015, Spain
关键词
SINGLE-PHOTON; ATOMIC ENSEMBLES; TRAPPED ATOM; COMMUNICATION; LIGHT; MATTER;
D O I
10.1038/nature09662
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Entanglement is the fundamental characteristic of quantum physics-much experimental effort is devoted to harnessing it between various physical systems. In particular, entanglement between light and material systems is interesting owing to their anticipated respective roles as 'flying' and stationary qubits in quantum information technologies (such as quantum repeaters(1-3) and quantum networks(4)). Here we report the demonstration of entanglement between a photon at a telecommunication wavelength (1,338 nm) and a single collective atomic excitation stored in a crystal. One photon from an energy-time entangled pair(5) is mapped onto the crystal and then released into a well-defined spatial mode after a predetermined storage time. The other (telecommunication wavelength) photon is sent directly through a 50-metre fibre link to an analyser. Successful storage of entanglement in the crystal is proved by a violation of the Clauser-Horne-Shimony-Holt inequality(6) by almost three standard deviations (S=2.64 +/- 0.23). These results represent an important step towards quantum communication technologies based on solid-state devices. In particular, our resources pave the way for building multiplexed quantum repeaters(7) for long-distance quantum networks.
引用
收藏
页码:508 / U79
页数:5
相关论文
共 50 条
  • [41] Photonic Orbital Angular Momentum for quantum interplaying with atoms and entanglement
    Pruvost, Laurence
    EOS ANNUAL MEETING, EOSAM 2024, 2024, 309
  • [42] Quantum computing using entanglement states in a photonic band gap
    Qiao, B
    Ruda, HE
    JOURNAL OF APPLIED PHYSICS, 1999, 86 (09) : 5237 - 5244
  • [43] High-Speed Entanglement Sources for Photonic Quantum Computers
    Laudenbach, Fabian
    Zeiger, Sophie
    Schrenk, Bernhard
    Huebel, Hannes
    ERCIM NEWS, 2018, (112): : 22 - 23
  • [44] Superconducting Quantum Node for Entanglement and Storage of Microwave Radiation
    Flurin, E.
    Roch, N.
    Pillet, J. D.
    Mallet, F.
    Huard, B.
    PHYSICAL REVIEW LETTERS, 2015, 114 (09)
  • [45] Voltage-Controlled Quantum Dynamics and Generation Entanglement between Two Separated Quantum-Dot Molecules Embedded in Photonic Crystal Cavities
    Cheng Mu-Tian
    Song Yan-Yan
    Ma Xiao-San
    Wang Xia
    COMMUNICATIONS IN THEORETICAL PHYSICS, 2014, 61 (04) : 531 - 535
  • [46] Voltage-Controlled Quantum Dynamics and Generation Entanglement between Two Separated Quantum-Dot Molecules Embedded in Photonic Crystal Cavities
    程木田
    宋艳艳
    马小三
    王霞
    Communications in Theoretical Physics, 2014, 61 (04) : 531 - 535
  • [47] A polarization-singularity photonic crystal waveguide design to enable quantum dot spin to photon entanglement on-chip
    Young, A. B.
    Thijssen, A. C. T.
    Beggs, D. M.
    Kuipers, L.
    Rarity, J. G.
    Oulton, R.
    2014 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2014,
  • [48] Quantum Storage of a Photonic Polarization Qubit in a Solid
    Guendogan, Mustafa
    Ledingham, Patrick M.
    Almasi, Attaallah
    Cristiani, Matteo
    de Riedmatten, Hugues
    PHYSICAL REVIEW LETTERS, 2012, 108 (19)
  • [49] Macroscopic quantum entanglement in the KHCO3 crystal
    Fillaux, F
    Decoherence, Entanglement and Information Protection in Complex Quantum Systems, 2005, 189 : 499 - 528
  • [50] Quantum optics of a quantum dot embedded in a photonic crystal cavity
    Sodagar, Majid
    Khorasani, Sina
    Atabaki, Amir Hossein
    Adibi, Ali
    PHOTONIC CRYSTAL MATERIALS AND DEVICES VII, 2008, 6901