• Acta Photonica Sinica
  • Vol. 50, Issue 9, 0906008 (2021)
Jiahao LI1, Lei SHI1, Tianxiu LI1, Yang XUE1, and Yani LI2
Author Affiliations
  • 1College of Information and Navigation, Air Force Engineering University, Xi'an70077, China
  • 2North Photoelectric Technology Defense Co., Ltd., Xi'an710043, China
  • show less
    DOI: 10.3788/gzxb20215009.0906008 Cite this Article
    Jiahao LI, Lei SHI, Tianxiu LI, Yang XUE, Yani LI. Four Wave Mixing Noise Analysis of Classical-quantum Signals Co-channel Transmission System[J]. Acta Photonica Sinica, 2021, 50(9): 0906008 Copy Citation Text show less
    References

    [1] C H BENNETT, G BRASSARD. Quantum cryptography: public key distribution and coin tossing. Bangalore, 175-179(1984).

    [2] N GISIN, G RIBORDY, W TITTEL et al. Quantum cryptography. Review of Modern Physics, 74, 145-195(2002).

    [3] V SCARANI, H B PASQUINUCCI, N J CERF et al. The security of practical quantum key distribution. Review of Modern Physics, 81, 1301-1350(2009).

    [4] Hualei YIN, Tengyun CHEN, Zongwen YU et al. Measurement-device-independent quantum key distribution over a 404 km optical fiber. Physical Review Letters, 117, 190501(2016).

    [5] Fengyu LU, Zhenqiang YIN, Rong WANG et al. Practical issues of twin-field quantum key distribution. New Journal of Physics, 21, 123030(2019).

    [6] P D TOWNSEND. Simultaneous quantum cryptographic key distribution and conventional data transmission over installed fiber using wavelength-division-multiplexing. Electronics Letters, 33, 188-190(1997).

    [7] N I NWEKEA, P TOLIVER, R J RUNSER et al. Experimental characterization of the separation between wavelength-multiplexed quantum and classical communication channels. Applied Physics Letters, 87, 174103(2005).

    [8] T E CHAPURAN, P TOLIVER, N A PETERS et al. Optical networking for quantum key distribution and quantum communications. New Journal of Physics, 11, 105001(2009).

    [9] N A PETERS, P TOLIVER, T E CHAPURAN. Dense wavelength multiplexing of 1550nm QKD with strong classical channels in reconfigurable networking environments. New Journal of Physics, 11(2009).

    [10] P ERAERDS, N WALENTA, M LEGRE. Quantum key distribution and 1 Gbps data encryption over a single fiber. New Journal of Physics, 12(2010).

    [11] K A PATEL, J F DYNES, M LUCAMARINI et al. Quantum key distribution for 10 Gb/s dense wavelength division multiplexing networks. Applied Physics Letters, 104, 175-179(2014).

    [12] Jianing NIU, Yongmei SUN, Chun CAI et al. Optimized channel allocation scheme for jointly reducing four-wave mixing and Raman scattering in the DWDM-QKD system. Applied Optics, 57, 7987-7996(2018).

    [13] K A PATEL, J F DYNES, I CHOI et al. Coexistence of high-bit-rate quantum key distribution and data on optical fiber. Physical Review X, 2(2012).

    [14] J F DYNES, A PLEWS et al. Ultra-high bandwidth quantum secured data transmission. Scientific Reports, 6, 35149(2016).

    [15] Liujun WANG, Kaiheng ZOU, Wei SUN et al. Long distance co-propagation of quantum key distribution and terabit classical optical data channels. Physical Review A, 95(2017).

    [16] Yingqiu MAO, Bixiao WANG, Chunxu ZHAO et al. Integrating quantum key distribution with classical communications in backbone fiber network. Optics Express, 26(2018).

    [17] B X WANG, Y Q MAO, L SHEN et al. Long-distance transmission of quantum key distribution coexisting with classical optical communication over weakly-coupled few-mode fiber. Optics Express, 28, 12558-12565(2020).

    [18] Yongmei SUN, Peng ZHANG, Xianglong JIA等. A low-noise wavelength assignment scheme for quantum-based secure optical communication. Radio Communications Technology, 46, 658-664(2020).

    [19] Pan RAN, Min HU, Banghong GUO. Noise processing technology of quantum and classical fusion communication system based on DWDM. Optical Communication Technology, 44, 22-26(2020).

    [20] Shanna DU, Yan TIAN, Yongmin LI. Impact of four-wave-mixing noise from dense-wavelength-division multiplexing systems on entangled-state continuous-variable quantum key distribution. Physics Review Applied, 14(2020).

    [21] Liangyuan ZHAO, Qianjun WU, Hongkang QIU et al. Practical security of wavelength-multiplexed decoy-state quantum key distribution. Physical Review A, 103(2021).

    [22] Junwen LUO, Yunxia LI, Lei SHI等. Study on the coexistence of quantum-classical signals based on single-mode operation in few-mode fiber. Acta Photonica Sinica, 7, 92-98(2017).

    [23] Yongmei SUN, Jianing NIU, Yuefeng JI. Noise suppression in the co-propagation of quantum signals and classical optical signals. Telecommunications Science, 34, 43-53(2018).

    [24] K MARKOWSKI, L CHORCHOS, J P TURKIEWICZ. Influence of four wave mixing in short- and medium-range 1310 nm dense wavelength division multiplexing systems. Applied Optics, 55, 3051-3057(2016).

    [25] Xiongfeng MA, Bing QI, Yi ZHAO et al. Practical decoy state for quantum key distribution. Physical Review A, 72(2005).

    [26] Xinrong MAO, Zhaofei KOU, Jianhua ZHANG等. Two improved methods of suppression four wave mixing effect in optical fiber transmission. Laser & Optoelectronics Progress, 54, 95-101(2017).

    [27] G BOSCO, A CARENA, V CURRI et al. On the use of NRZ, RZ, and CSRZ modulation at 40 Gb/s with narrow DWDM channel spacing. Journal of Lightwave Technology, 20, 1694-1704(2002).

    Jiahao LI, Lei SHI, Tianxiu LI, Yang XUE, Yani LI. Four Wave Mixing Noise Analysis of Classical-quantum Signals Co-channel Transmission System[J]. Acta Photonica Sinica, 2021, 50(9): 0906008
    Download Citation