• Photonics Research
  • Vol. 7, Issue 11, 1306 (2019)
Yudi Fu, Mengfan Cheng*, Xingxing Jiang, Quan Yu, Linbojie Huang, Lei Deng, and Deming Liu
Author Affiliations
  • National Engineering Laboratory for Next Generation Internet Access System (NGIA), School of Optical and Electronic Information, Huazhong University of Science and Technology (HUST), Wuhan 430074, China
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    DOI: 10.1364/PRJ.7.001306 Cite this Article Set citation alerts
    Yudi Fu, Mengfan Cheng, Xingxing Jiang, Quan Yu, Linbojie Huang, Lei Deng, Deming Liu. High-speed optical secure communication with external noise source and internal time-delayed feedback loop[J]. Photonics Research, 2019, 7(11): 1306 Copy Citation Text show less
    Experimental setup of the secure communication system. LD, tunable laser diode; PC, polarization controller; RF, radio-frequency amplifier; IM, intensity modulator; EDFA, erbium-doped fiber amplifier; PD, photodetector; PM, phase modulator; FBG, fiber Bragg grating; DL, tunable delay line; OC, optical coupler; SSMF, standard single-mode fiber; SPMF, self-phase-modulated optical feedback.
    Fig. 1. Experimental setup of the secure communication system. LD, tunable laser diode; PC, polarization controller; RF, radio-frequency amplifier; IM, intensity modulator; EDFA, erbium-doped fiber amplifier; PD, photodetector; PM, phase modulator; FBG, fiber Bragg grating; DL, tunable delay line; OC, optical coupler; SSMF, standard single-mode fiber; SPMF, self-phase-modulated optical feedback.
    (a) Time series of the original data signal at the output of intensity modulator; (b) time series of the encrypted signal at the output of FBG2; (c) time series of the decrypted signal at the output of FBG4; (d) eye diagram of the original data signal at the output of intensity modulator; (e) eye diagram of the encrypted signal at the output of FBG2; (f) eye diagram of the decrypted signal at the output of FBG4.
    Fig. 2. (a) Time series of the original data signal at the output of intensity modulator; (b) time series of the encrypted signal at the output of FBG2; (c) time series of the decrypted signal at the output of FBG4; (d) eye diagram of the original data signal at the output of intensity modulator; (e) eye diagram of the encrypted signal at the output of FBG2; (f) eye diagram of the decrypted signal at the output of FBG4.
    (a) RF spectrum of the data signal; (b) RF spectrum of the encrypted signal; (c) RF spectrum of the decrypted signal.
    Fig. 3. (a) RF spectrum of the data signal; (b) RF spectrum of the encrypted signal; (c) RF spectrum of the decrypted signal.
    (a) BER variation of the decrypted signal with time-delay mismatch between DL1 and DL2; (b) BER variation of the decrypted signal with dispersion mismatch between FBG2 and FBG3; (c) BER variation of the decrypted signal with dispersion mismatch between FBG1 and FBG4.
    Fig. 4. (a) BER variation of the decrypted signal with time-delay mismatch between DL1 and DL2; (b) BER variation of the decrypted signal with dispersion mismatch between FBG2 and FBG3; (c) BER variation of the decrypted signal with dispersion mismatch between FBG1 and FBG4.
    (a) ACF of time series with original parameter settings; (b) ACF of time series with time-delay concealment.
    Fig. 5. (a) ACF of time series with original parameter settings; (b) ACF of time series with time-delay concealment.
    (a) Peak size of ACF values under different dispersions of FBG1; (b) peak size of ACF values under different dispersions of FBG2.
    Fig. 6. (a) Peak size of ACF values under different dispersions of FBG1; (b) peak size of ACF values under different dispersions of FBG2.
    System structures for complexity measurement. (a) Phase chaos structure; (b) phase chaos with an external phase noise source; (c) SPMF loop with an external phase noise source.
    Fig. 7. System structures for complexity measurement. (a) Phase chaos structure; (b) phase chaos with an external phase noise source; (c) SPMF loop with an external phase noise source.
    Experiment structure of the proposed encryption scheme for WDM.
    Fig. 8. Experiment structure of the proposed encryption scheme for WDM.
    Spectra of DWDM channels.
    Fig. 9. Spectra of DWDM channels.
    Yudi Fu, Mengfan Cheng, Xingxing Jiang, Quan Yu, Linbojie Huang, Lei Deng, Deming Liu. High-speed optical secure communication with external noise source and internal time-delayed feedback loop[J]. Photonics Research, 2019, 7(11): 1306
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