• Advanced Photonics Nexus
  • Vol. 3, Issue 4, 046008 (2024)
Yanwei Cui1, Jianguo Zhang1,*, Zhongquan Nie2,*, Anbang Wang3,4,*, and Yuncai Wang3,4
Author Affiliations
  • 1Taiyuan University of Technology, Ministry of Education, College of Electronic Information and Optical Engineering, Key Laboratory of Advanced Transducers and Intelligent Control System, Taiyuan, China
  • 2National University of Defense Technology, College of Advanced Interdisciplinary Studies, Changsha, China
  • 3Guangdong University of Technology, School of Information Engineering, Guangzhou, China
  • 4Guangdong Provincial Key Laboratory of Photonics Information Technology, Guangzhou, China
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    DOI: 10.1117/1.APN.3.4.046008 Cite this Article Set citation alerts
    Yanwei Cui, Jianguo Zhang, Zhongquan Nie, Anbang Wang, Yuncai Wang, "Achieving high-security and massive-capacity optical communications based on orbital angular momentum configured chaotic laser," Adv. Photon. Nexus 3, 046008 (2024) Copy Citation Text show less
    OAM-CCL. (a) Concept of OAM-CCL and (b) intensity profiles and phase fronts for different OAM beams.
    Fig. 1. OAM-CCL. (a) Concept of OAM-CCL and (b) intensity profiles and phase fronts for different OAM beams.
    Schematic diagram of the communication system based on OAM-CCL. SL, laser; VOA, variable optical attenuator; FM, fiber optic mirror; PC, polarization controller; DL, delay line; Col., collimator; Pol., linear polarizer; SLM, spatial light modulator; EDFA, erbium-doped fiber amplifier; AM, amplitude modulator; BS, free-space beam splitter; M, mirror; PD, photodetector; DIF, current differential; and OSC, oscilloscope.
    Fig. 2. Schematic diagram of the communication system based on OAM-CCL. SL, laser; VOA, variable optical attenuator; FM, fiber optic mirror; PC, polarization controller; DL, delay line; Col., collimator; Pol., linear polarizer; SLM, spatial light modulator; EDFA, erbium-doped fiber amplifier; AM, amplitude modulator; BS, free-space beam splitter; M, mirror; PD, photodetector; DIF, current differential; and OSC, oscilloscope.
    System performance. (a) Timing waveforms of SLD, SLT, and SLR; (b) power spectrum before and after encryption; (c) BER versus masking coefficient at OSNR = 20 dB; and (d) BER versus masking coefficient at different OSNRs.
    Fig. 3. System performance. (a) Timing waveforms of SLD, SLT, and SLR; (b) power spectrum before and after encryption; (c) BER versus masking coefficient at OSNR = 20 dB; and (d) BER versus masking coefficient at different OSNRs.
    System capacity and degrees of freedom. (a) System capacity versus mode number for different masking coefficients at OSNR = 20 dB. (b) The relationship between receiver size and transmission distance for different beam waists, RR=10 cm and RT=10 cm.
    Fig. 4. System capacity and degrees of freedom. (a) System capacity versus mode number for different masking coefficients at OSNR = 20 dB. (b) The relationship between receiver size and transmission distance for different beam waists, RR=10  cm and RT=10  cm.
    System performance with misalignment. (a) Synchronization coefficient under simultaneous displacement and angular errors. (b) BER of OAM +3 mode under simultaneous displacement and angular errors, with ρ=0.187, ω0=2 cm, and mode space = 2.
    Fig. 5. System performance with misalignment. (a) Synchronization coefficient under simultaneous displacement and angular errors. (b) BER of OAM +3 mode under simultaneous displacement and angular errors, with ρ=0.187, ω0=2  cm, and mode space = 2.
    Illustration of the indoor communication simulation for the OAM-CCL-based communication system.
    Fig. 6. Illustration of the indoor communication simulation for the OAM-CCL-based communication system.
    Yanwei Cui, Jianguo Zhang, Zhongquan Nie, Anbang Wang, Yuncai Wang, "Achieving high-security and massive-capacity optical communications based on orbital angular momentum configured chaotic laser," Adv. Photon. Nexus 3, 046008 (2024)
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