Multidimensional mode-separable frequency conversion for high-speed quantum communication

被引:59
|
作者
Manurkar, Paritosh [1 ]
Jain, Nitin [1 ]
Silver, Michael [1 ]
Huang, Yu-Ping [2 ]
Langrock, Carsten [3 ]
Fejer, Martin M. [3 ]
Kumar, Prem [1 ,4 ]
Kanter, Gregory S. [1 ]
机构
[1] Northwestern Univ, Dept Elect Engn & Comp Sci, Evanston, IL 60208 USA
[2] Stevens Inst Technol, Dept Phys & Engn Phys, Hoboken, NJ 07030 USA
[3] Stanford Univ, EL Ginzton Lab, Stanford, CA 94305 USA
[4] Northwestern Univ, Dept Phys & Astron, Evanston, IL 60208 USA
来源
OPTICA | 2016年 / 3卷 / 12期
关键词
ORBITAL ANGULAR-MOMENTUM; WAVE-FORM GENERATION; UP-CONVERSION; HIGH-EFFICIENCY;
D O I
10.1364/OPTICA.3.001300
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Quantum frequency conversion (QFC) of photonic signals preserves quantum information while simultaneously changing the signal wavelength. A common application of QFC is to translate the wavelength of a signal compatible with the current fiber-optic infrastructure to a shorter wavelength more compatible with high-quality single-photon detectors and optical memories. Recent work has investigated the use of QFC to manipulate and measure specific temporal modes (TMs) through tailoring the pump pulses. Such a scheme holds promise for multidimensional quantum state manipulation that is both low loss and re-programmable on a fast time scale. We demonstrate the first QFC temporal mode sorting system in a four-dimensional Hilbert space, achieving a conversion efficiency and mode separability as high as 92% and 0.84, respectively. A 20-GHz pulse train is projected onto 6 different TMs, including superposition states, and mode separability with weak coherent signals is verified via photon counting. Such ultrafast high-dimensional photonic signals could enable long-distance quantum communication at high rates. (C)2016 Optical Society of America
引用
收藏
页码:1300 / 1307
页数:8
相关论文
共 50 条
  • [21] High-speed photonic/electronic conversion
    Univ of Brussels, Brussels, Belgium
    IEEE Circuits Devices Mag, 4 (24-29):
  • [22] High-speed photonic/electronic conversion
    Ayadi, K
    Heremans, P
    Kuijk, M
    DeTandt, C
    Borghs, G
    Vounckx, R
    IEEE CIRCUITS & DEVICES, 1997, 13 (04): : 24 - 29
  • [23] The Research of the Turbo Coding Technology in the High-speed Underwater Communication with OFDM Mode
    Lan, Wei
    Fang, Bin
    Jin, Shi-Sheng
    Cheng, Wei Wei
    PIERS 2011 SUZHOU: PROGRESS IN ELECTROMAGNETICS RESEARCH SYMPOSIUM, 2011, : 1211 - 1214
  • [24] Optical Polarization Mode Dispersion Compensators for High-Speed Optical Communication Systems
    Xie, Chongjin
    Werner, Dieter
    Haunstein, Herbert
    Jopson, Robert M.
    Chandrasekhar, Sethumadhavan
    Liu, Xiang
    Shi, Yan
    Gronbach, Siegfried
    Link, Thomas
    Czotscher, Konrad
    BELL LABS TECHNICAL JOURNAL, 2010, 14 (04) : 115 - 129
  • [25] High-speed polarization controller for all-fiber quantum communication systems
    Li Shen
    Ma Hai-Qiang
    Wu Ling-An
    Zhai Guang-Jie
    ACTA PHYSICA SINICA, 2013, 62 (08)
  • [26] Exploiting quantum and classical noises for securing high-speed optical communication networks
    Kanter, GS
    Corndorf, E
    Liang, C
    Grigoryan, VS
    Kumar, P
    FLUCTUATIONS AND NOISE IN PHOTONICS AND QUANTUM OPTICS III, 2005, 5846 : 74 - 86
  • [27] HIGH-SPEED COMMUNICATION-NETWORKS
    CHLAMTAC, I
    PROCEEDINGS OF THE IEEE, 1990, 78 (01) : 3 - 4
  • [28] High-Speed Molecular Communication in Vacuum
    Sajjad, Taha
    Eckford, Andrew W.
    IEEE TRANSACTIONS ON MOLECULAR BIOLOGICAL AND MULTI-SCALE COMMUNICATIONS, 2023, 9 (04): : 382 - 390
  • [29] COMPUTERS, COMMUNICATION AND HIGH-SPEED RAILWAYS
    ANDERTON, WE
    WIRELESS WORLD, 1975, 81 (1476): : 348 - 353
  • [30] MULTIMEDIA COMMUNICATION WITH HIGH-SPEED PROTOCOLS
    BAUERFELD, W
    WESTBROCK, H
    COMPUTER NETWORKS AND ISDN SYSTEMS, 1991, 23 (1-3): : 143 - 151