Fundamental building block for all-optical scalable quantum networks

被引:46
|
作者
Lee, Seung-Woo [1 ]
Ralph, Timothy C. [2 ]
Jeong, Hyunseok [3 ]
机构
[1] Korea Inst Adv Study, Quantum Universe Ctr, Seoul 02455, South Korea
[2] Univ Queensland, Ctr Quantum Computat & Commun Technol, Sch Math & Phys, St Lucia, Qld 4072, Australia
[3] Seoul Natl Univ, Dept Phys & Astron, Seoul 08826, South Korea
基金
新加坡国家研究基金会; 澳大利亚研究理事会;
关键词
ATOMIC ENSEMBLES; STATE; REPEATERS; COMMUNICATION; TELEPORTATION; COMPUTATION; PHOTONS; SCHEME; MEMORY; LIGHT;
D O I
10.1103/PhysRevA.100.052303
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Major obstacles against efficient long-distance quantum communication are photon losses during transmission and the probabilistic nature of Bell measurement causing exponential scaling in time and resource with distance. To overcome these difficulties, while conventional quantum repeaters require matter-based operations with long-lived quantum memories, recent proposals have employed encoded multiple photons in entanglement, providing an alternative way for scalability. In pursuing scalable quantum communications, naturally arising questions are thus whether any ultimate limit exists in all-optical scalability and whether and how it can be achieved. Motivated by these questions, we derive the fundamental limits of the efficiency and loss tolerance of the Bell measurement with multiple photons, restricted not by protocols but by the laws of physics, i.e., linear optics and no-cloning theorem. We then propose a Bell measurement scheme with linear optics, which enables one to reach both the fundamental limits: one by linear optics and the other by the no-cloning theorem. The quantum repeater based on our scheme allows one to achieve fast and efficient quantum communication over arbitrary long distances, outperforming previous all-photonic and matter-based protocols. Our work provides a fundamental building block for quantum networks within but toward the ultimate limits of all-optical scalability.
引用
收藏
页数:19
相关论文
共 50 条
  • [41] Routing in constrained all-optical networks
    Soliman, H
    Peyton, C
    6TH WORLD MULTICONFERENCE ON SYSTEMICS, CYBERNETICS AND INFORMATICS, VOL X, PROCEEDINGS: MOBILE/WIRELESS COMPUTING AND COMMUNICATION SYSTEMS II, 2002, : 581 - 585
  • [42] Lightpath concentrators for all-optical networks
    Leung, Yiu-Wing
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2006, 24 (09) : 3259 - 3267
  • [43] Security issues in all-optical networks
    Medard, M
    Marquis, D
    Barry, RA
    Finn, SG
    IEEE NETWORK, 1997, 11 (03): : 42 - 48
  • [44] Granularity in all-optical WDM networks
    Iannone, E
    Sabella, R
    Binetti, S
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 1998, 16 (12) : 2318 - 2327
  • [45] DWDM spurs all-optical networks
    EXFO, Vanier, Canada
    EE Eval Engin, 10 (3 pp):
  • [46] Nash equilibria in all-optical networks
    Georgakopoulos, George F.
    Kavvadias, Dimitris J.
    Sioutis, Leonidas G.
    DISCRETE MATHEMATICS, 2009, 309 (13) : 4332 - 4342
  • [47] ARCHITECTURES AND TECHNIQUES FOR ALL-OPTICAL NETWORKS
    FORGHIERI, F
    BONONI, A
    ZHANG, JG
    PRUCNAL, PR
    PICCHI, G
    PRATI, G
    FIBER AND INTEGRATED OPTICS, 1994, 13 (02) : 165 - 183
  • [48] Role of all-optical neural networks
    Matuszewski, M.
    Prystupiuk, A.
    Opala, A.
    PHYSICAL REVIEW APPLIED, 2024, 21 (01)
  • [49] Multicasting for all-optical multifiber networks
    Koksal, Fatih
    Ersoy, Cem
    JOURNAL OF OPTICAL NETWORKING, 2007, 6 (02): : 219 - 238
  • [50] WAVELENGTH REQUIREMENTS OF ALL-OPTICAL NETWORKS
    PANKAJ, RK
    GALLAGER, RG
    IEEE-ACM TRANSACTIONS ON NETWORKING, 1995, 3 (03) : 269 - 280