• Laser & Optoelectronics Progress
  • Vol. 61, Issue 7, 0706020 (2024)
Funan Zhu1、2、3, Jiawei Li3, Shaowen Lu3, and Weibiao Chen1、2、3、*
Author Affiliations
  • 1Key Laboratory of Space Laser Communication and Detection Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
  • 2Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
  • 3Laboratory of Space Laser Engineering, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
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    DOI: 10.3788/LOP232184 Cite this Article Set citation alerts
    Funan Zhu, Jiawei Li, Shaowen Lu, Weibiao Chen. Performance Analysis of OOK and BPSK Compatible Laser Communication[J]. Laser & Optoelectronics Progress, 2024, 61(7): 0706020 Copy Citation Text show less

    Abstract

    To adapt to the networking technology of space laser communication, the multi-system multiplexed communication mode was developed. In the transmitter, an intensity modulator is used to realize on-off keying (OOK) and binary phase shift keying (BPSK) modulation compatibility; while in the receiver, demodulation of these two modulation signals is realized via intradyne detection. In practical engineering applications, shot noise and thermal noise of electronic devices in laser communication system will inevitably affect the communication performance. Accordingly, the influences of bias point error of intensity modulator and optical filter bandwidth on the signal-to-noise ratio of incoherent OOK and coherent BPSK communication are further analyzed herein. Simulation results show that the optical filter bandwidth significantly influences the incoherent OOK communication performance: the incoherent OOK SNR overhead of 1 nm filter bandwidth is approximately 1.26 when the received optical power is -46 dBm; the coherent BPSK SNR overhead of 20 nm filter bandwidth is less than 0.02 when the received optical power is below -50 dBm. If the codeless communication sensitivity of incoherent OOK is required to meet -46 dBm@10-6 at the rate of 1.25 Gbit/s, the optical filter bandwidth should not be greater than 0.8 nm, the bias error of the intensity modulator should be controlled within 1% of the half-wave voltage. Under the condition of common-mode noise elimination and optimized optical filter bandwidth, the codeless sensitivity of BPSK communication at 1.25 Gbit/s rate is satisfactory to -55 dBm@10-6.
    Eo=Pscosφ1-φ22×expjw0t+φ1+φ22+φs
    Eo=Pscos(φ1)×expj(w0t+φs),φ1=        π2VπVDC+VRF(t)Po=EoEo*=Ps21+cos(2φ1)
    Eook=Pscosπ2Vπm(t)Vπ2+VDC×        expj(w0t+φs)Pook=EookEook*EBPSK=Pscosπ2Vπm(t)Vπ+VDC)×        expj(w0t+φs)PBPSK=EBPSKEBPSK*
    VDC=VDC_opt+Vr+Verr
    Qook=R(Pmax-Pmin)σn1-σn0
    RBER-BP=0.5erfc(RSNR/2)
    RBER-ook=0.51-erf(Qook/2)12πexp(-Qook2/2)Qook
    Sase=nsp(G-1)hvPase=SaseBo
    Eook-0=221-ks   GPscosπ2Vπm(t)Vπ2+VDCexpj(w0t+φs0)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)Eook-90=22ks   GPscosπ2Vπm(t)Vπ2+VDCexpj(w0t+φs1)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)Eook-180=221-ks   GPscosπ2Vπm(t)Vπ2+VDCexpj(w0t+φs2)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)Eook-270=22ks   GPscosπ2Vπm(t)Vπ2+VDCexpj(w0t+φs3)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)
    Iook=R(EookEook*)+In'=Is+In=GPsR81+cosπVπm(t)Vπ2+VDC+In
    In=In-T+In-shot+In-ase+Ins-ase+Inase-aseIn-ase=RPase/4In-T=4KT/RLBeIn-shot=2qR(GPs/8+Pase/4)BeIns-ase=R2GPscosπ2VπVπ2m(t)+VDCk=0k=Bo2ΔvSaseΔvcos(2πkΔvt+φk-φs)I¯ns-ase2R2GPsR41+cosπVπ(VDC+Vπ2)+cosπVπ(VDC-Vπ2)Pase14Inase-ase=12k>jSaseΔvcos2π(k-j)Δvt+φk-φj,k,j[0,+Bo2Δv],k>j
    RSNR-overhead=1g(RSNR-act)-1g(RSNR-0.2 nm)
    Qoverhead=1g(Qook_opt)-1g(Qook)
    EBP-0=221-ks   GPscosπ2Vπm(t)Vπ+VDCexpj(w0t+φs0)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)+   221-kLOPLexpj(wLt+φL0)EBP-90=22ks   GPscosπ2Vπm(t)Vπ+VDCexpj(w0t+φs1)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)+   22kLOPLexpj(wLt+φL1-π2)EBP-180=221-ks   GPscosπ2Vπm(t)Vπ+VDCexpj(w0t+φs2)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)-   221-kLOPLexpj(wLt+φL2)EBP-270=22ks   GPscosπ2Vπm(t)Vπ+VDCexpj(w0t+φs3)+k=-Bo2Δvk=Bo2ΔvSaseΔvexpj(w0t+2πkΔvt+φk)-   22kLOPLexpj(wLt+φL3-π2)
    I(t)=R(EBP-0EBP-0*-EBP-180EBP-180*)+In'Q(t)=R(EBP-90EBP-90*-EBP-270EBP-270*)+Qn'
    In=Qn=In-T+In-shot+InL-shot+Ins-ase+Inase-ase+In-aseIn-ase=RPase/4I¯ns-ase2R2GPsR41+cosπVπ(VDC+Vπ)+   cosπVπ(VDC-Vπ)Pase14
    In=Qn=In-T+In-shot+InL-shotIn-shot=2qR(GPs/4+Pase/4+PL/4)BeI¯nL-ase2=R2PLPase2BeBo
    RSNR-overhead=RSNR-20 nm-RSNR-0.2 nm
    RSNR-overhead=RSNR-without commnoise-RSNR-with commnoise
    Funan Zhu, Jiawei Li, Shaowen Lu, Weibiao Chen. Performance Analysis of OOK and BPSK Compatible Laser Communication[J]. Laser & Optoelectronics Progress, 2024, 61(7): 0706020
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