• Laser & Optoelectronics Progress
  • Vol. 58, Issue 5, 0527002 (2021)
Min Nie1, Yanpeng Zhang1、*, Guang Yang1、2, Meiling Zhang1, and Changxing Pei3
Author Affiliations
  • 1School of Communication and Information Engineering, Xi'an University of Posts and Telecommunications, Xi'an , Shaanxi 710121, China
  • 2School of Electronics and Information, Northwestern Polytechnical University, Xi'an , Shaanxi 710072, China
  • 3State Key Laboratory of Integrated Service Networks, Xidian University, Xi'an , Shaanxi 710071, China
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    DOI: 10.3788/LOP202158.0527002 Cite this Article Set citation alerts
    Min Nie, Yanpeng Zhang, Guang Yang, Meiling Zhang, Changxing Pei. Performance Optimization Strategy for Quantum Satellite Communication Based on Entanglement Feedback Control[J]. Laser & Optoelectronics Progress, 2021, 58(5): 0527002 Copy Citation Text show less

    Abstract

    Quantum satellite communications in free space are susceptible to interference from ionosphere, space plasma and ice crystal particles. These factors can interfere with the normal communications of quantum satellites. In order to improve the anti-interference ability of quantum satellite links, this paper first proposes an optimization strategy based on quantum entanglement feedback control (QEFC). In QEFC, the leaked photons in the cavity are measured and the information obtained by measure is used to estimate the states of atoms. Further the controller is adjusted to change the spin of atoms in the cavity. The relationship of different environmental factors with fidelity and bit error rate is established. Moreover,the system performance parameters before and after the adoption of QEFC are compared. Finally, the performance simulation is performed. The results show that QEFC can improve the fidelity of quantum satellite communication system under natural environmental interference in the amplitude damping channels and depolarization channels. In the space plasma environment, QEFC can reduce the bit error rate from 13.7×10-3 to 9.4×10-3 when the plasma particle radius is 10 μm and the transmission distance is 200 km. It follows that QEFC can effectively improve the link performance of quantum satellite communication systems.
    dρ(t)=-i[H,ρ(t)]+aρ(t)a-12aaρ(t)-12ρ(t)aadt
    I(t)=Tr[(L+L)ρ(t)]Δt
    ρf=-i[F,ρ(t)]I(t)
    dρdt=-i[H,ρ(t)]+aρ(t)a-12aaρ(t)-12ρ(t)aa+κaρ(t)+ρ(t)a+12ηκ2ρ(t)
    ρ1=-i[H1,ρ]-J2q,q,ρ
    Fρ1,σ=Trσ12ρ1σ12
    0φA0φA1φA1-p1φA+p0φB
    ρAρA'=ρ00+pρ111-pρ011-pρ10(1-p)ρ11
    ρAσ=1+pp1-p100p1-pp1
    Fρ1,σ=Tr1+pp1-p100p1-pp112×α2αβαββ2×1+pp1-p100p1-pp112
    eα0+β1αe00+e0'1+βe10+e1'1
    eα0+β1e+I+e-Z+e+'X+e-'Yα0+β1
    φeI1-p'Iφ+p'3XφeXp'3YφeY+ZφeZ
    K0=1-p'IK1=p'3XK2=p'3YK3=p'3Z
    ρAρA'=1-23pρ001-23pρ011-23pρ101-23pρ11
    ρAσ =p2+1-pp100p2+1-p1-p1
    Fρ1,σ=Trp2+1-pp100p2+1-p1-p112α2αβαββ2p2+1-pp100p2+1-p1-p112
    eα0+β11-p2α0+β1eI+p2α0eX+β1eY
    ρAσ=ρ001-p2ρ011-p2ρ10ρ11
    Fρ1,σ=Trρ001-p2ρ011-p2ρ10ρ1112α2αβαββ2ρ001-p2ρ011-p2ρ10ρ1112
    ρ=k=0λkk!exp-λkk
    EQ=k=02δkNkλkk!exp-λ
    EQ=δ0N0+k=02δ0N0+δd1-ηdkλkk!exp-λ
    α=010nd2πrln τexp-ln rrave22ln τ2σtotdr
    Aatt=10αlb ed
    ηd=10-Aatt/100
    Min Nie, Yanpeng Zhang, Guang Yang, Meiling Zhang, Changxing Pei. Performance Optimization Strategy for Quantum Satellite Communication Based on Entanglement Feedback Control[J]. Laser & Optoelectronics Progress, 2021, 58(5): 0527002
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