• Acta Photonica Sinica
  • Vol. 50, Issue 3, 40 (2021)
Dongxu LIU1、2, Xiaonan YU2, Shoufeng TONG2, and Tong WANG2
Author Affiliations
  • 1School of Photoelectric Engineering, Changchun University of Science and Technology, Changchun, 30022, China
  • 2NUERC of Space and Optoelectronics Technology, Changchun University of Science and Technology, Changchun, 1300, China
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    DOI: 10.3788/gzxb20215003.0306002 Cite this Article
    Dongxu LIU, Xiaonan YU, Shoufeng TONG, Tong WANG. Key Technologies of Laser Communication Based on Single Photon Detection and Pulse Position Modulation[J]. Acta Photonica Sinica, 2021, 50(3): 40 Copy Citation Text show less

    Abstract

    In order to achieve high sensitivity space laser communication and improve the anti-interference ability of the transmission channel, this article combines single photon detection technology and pulse position modulation technology, the single photon detector avalanche is quenched by the combination of the gated circuit and the feedback quenching circuit. The insert frame header method was designed to modulate and demodulate the pulse position. The pulse position modulation and demodulation process was simulated by field programmable gate array, which verified the effectiveness and feasibility of the insert frame header method. On this basis, a 1 550 nm pulse position modulation laser communication experiment was built, and the performance of the single photon detector under different parameter was tested at the same time. The results show that the single photon detector has the best performance when the detection efficiency is 25%, the trigger delay is 8.00 ns, the gate width is 5.0 ns and the death time is 0.1 μs. Finally, the detection sensitivity of single photon detectors with different modulation rates was tested. The results show that the communication sensitivity is -51.8 dBm when the communication code rate is 1 Mbps; the communication sensitivity is -41.0 dBm when the communication code rate is 4 Mbps, which realizes high sensitivity space laser communication.
    n1'sngates=Pn1=1-Pn=0=1-e-λλ00!=1-e-λ(1)

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    λp=-ln1-n1'sngates-λd(2)

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    EPDλ̂tot=-ln1-n1'sngates-λdngates(3)

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    σx2=ngatesp1-pngates2=p1-pngates(4)

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    Eyx=-yxfxdx(5)

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    Eyx=yμμ-εμ+εfxdx=yμ(6)

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    yx=yμ+y'μx-μ++ynμx-μnn!(7)

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    Eyx=yμ+y''μx-μ22=yμ+y''μσx22(8)

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    Ey2x=y2μx+σx2y'μx2+yμxy''μx(9)

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    λ2tot=y'μx2σx2ngates2=p1-pngates(10)

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    RSN=EPDλpngatesp1-pngates(11)

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    pse=p0p1/0+p1p0/1(12)

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    p1/0=c12πσexp-y22σ2dy=12erfcc2σ(13)

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    p0/1=1-12erfcc-εt2σ=12erfcεt-c2σ(14)

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    pse=2k-12k+1erfc122σ2εtln2k-1+12εt2σ2+12k+1erfc12εt2σ2-122σ2εtln2k-1(15)

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    Dongxu LIU, Xiaonan YU, Shoufeng TONG, Tong WANG. Key Technologies of Laser Communication Based on Single Photon Detection and Pulse Position Modulation[J]. Acta Photonica Sinica, 2021, 50(3): 40
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