Breaking fundamental limits of quantum entanglement distribution with quantum switch

被引:0
|
作者
Xu, Ruiqing [1 ,2 ]
Zhou, Rigui [1 ,2 ]
Li, Yaochong [1 ,2 ]
机构
[1] The College of Information Engineering, Shanghai Maritime University, Shanghai
[2] Research Center of Intelligent Information Processing and Quantum Intelligent Computing, Shanghai Maritime University, Shanghai
来源
Tongxin Xuebao/Journal on Communications | 2024年 / 45卷 / 10期
基金
中国国家自然科学基金;
关键词
coherent information; quantum switch; relative entropy of entanglement; two-way entanglement distribution capacity;
D O I
10.11959/j.issn.1000-436x.2024177
中图分类号
学科分类号
摘要
To solve the problem of low efficiency of entanglement distribution caused by quantum information easily lost in quantum channels, quantum switch was proposed to transmit quantum information. Considering the information transmission capacity of quantum switch, an adaptive entanglement distribution protocol with quantum switch was proposed and two-way entanglement distribution capacity with quantum switch was correspondingly derived. Then the tighter upper bound of channel capacity was derived by using teleportation simulation of quantum channel, the tighter lower bound was derived on the basis of Hash inequality. Simulation result shows that the lower bound of channel capacity in the proposed method generally surpasses the upper bound of which in the traditional quantum channel, providing a feasible thought for delivering high-rate quantum information. © 2024 Editorial Board of Journal on Communications. All rights reserved.
引用
收藏
页码:69 / 80
页数:11
相关论文
共 30 条
  • [1] WANG H, ZHAO Y L., Overview of quantum key distribution metropolitan optical networking technology, Journal on Communications, 40, 9, pp. 168-174, (2019)
  • [2] WEN J, LI S, LIU X, Et al., Deploying quantum key distribution network over a classical network infrastructure in Nanning, Journal of Guangxi University (Natural Science Edition), 47, 3, pp. 723-731, (2022)
  • [3] BENNETT C H, BRASSARD G, CREPEAU C, Et al., Teleporting an unknown quantum state via dual classical and Einstein-Podolsky-Rosen channels, Physical Review Letters, 70, 13, pp. 1895-1899, (1993)
  • [4] BRIEGEL H J, DUR W, CIRAC J I, Et al., Quantum repeaters: the role of imperfect local operations in quantum communication, Physical Review Letters, 81, 26, pp. 5932-5935, (1998)
  • [5] BENNETT C H, DIVINCENZO D P, SMOLIN J A, Et al., Mixed-state entanglement and quantum error correction, Physical Review A, Atomic, Molecular, and Optical Physics, 54, 5, pp. 3824-3851, (1996)
  • [6] BENNETT C H, DIVINCENZO D P, SMOLIN J A., Capacities of quantum erasure channels, Physical Review Letters, 78, 16, pp. 3217-3220, (1997)
  • [7] GARCIA-PATRON R, PIRANDOLA S, LLOYD S, Et al., Reverse coherent information, Physical Review Letters, 102, 21, (2009)
  • [8] TAKEOKA M, GUHA S, WILDE M M., Fundamental rate-loss tradeoff for optical quantum key distribution, Nature Communications, 5, (2014)
  • [9] PIRANDOLA S, LAURENZA R, OTTAVIANI C, Et al., Fundamental limits of repeaterless quantum communications, Nature Communications, 8, (2017)
  • [10] YAN Z P, NIE M, YANG G., Transmission damage and repair strategy of quantum signaling in fiber channel, Journal on Communications, 36, 7, pp. 185-190, (2015)