Effect of non-spherical atmospheric charged particles and atmospheric visibility on performance of satellite-ground quantum link and parameters simulation

Shi Li , Nie Min , Yang Guang , Pei Changxing
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引用次数: 1

Abstract

In order to study the relationship between the non-spherical atmospheric charged particles and satellite-ground quantum links attenuation. The relationship among the particle concentration, equivalent radius, charge density of the charged particle, the attenuation coefficient and entanglement of the satellite-ground quantum link can be established first according to the extinction cross section and spectral distribution function of the non-spherical atmospheric charged particles. The quantitative relationship between atmospheric visibility and communication fidelity of satellite-ground quantum link were analyzed then. Simulation results show that the ellipsoid, Chebyshev atmospheric charged particle influences on attenuation of the satellite-ground quantum link increase progressively. When the equivalent particle radius is 0.2 μm and the particle concentration is 50 μg/m3, the attenuation coefficient and entanglement of the satellite-ground quantum link is 9.21 dB/km, 11.46 dB/km and 0.453, 0.421 respectively; When the atmospheric visibility reduces from 8 km to 2 km, the communication fidelity of satellite-ground quantum link decreases from 0.52 to 0.08. It is shown that the non-spherical atmospheric charged particles and atmospheric visibility influence greatly on the performance of the satellite-ground quantum link communication system. Therefore, it is necessary to adjust the parameters of the quantum-satellite communication system according to the visibility values of the atmosphere and the shapes of the charged particles in the atmosphere to improve reliability of the satellite-ground quantum link.

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非球形大气带电粒子和大气能见度对星地量子链路性能的影响及参数模拟
为了研究非球形大气带电粒子与星地量子链路衰减之间的关系。根据非球形大气带电粒子的消光截面和光谱分布函数,可以首先建立带电粒子的粒子浓度、等效半径、电荷密度、衰减系数和星地量子链路纠缠度之间的关系。分析了星地量子链路大气能见度与通信保真度之间的定量关系。仿真结果表明,椭球面、切比雪夫大气带电粒子对星地量子链路衰减的影响逐渐增大。当等效粒子半径为0.2μm,粒子浓度为50μg/m3时,星地量子链路的衰减系数和纠缠度分别为9.21dB/km、11.46dB/km和0.453、0.421;当大气能见度从8km降低到2km时,星地量子链路的通信保真度从0.52降低到0.08。结果表明,非球形大气带电粒子和大气能见度对星地量子链路通信系统的性能影响很大。因此,有必要根据大气的能见度值和大气中带电粒子的形状来调整量子卫星通信系统的参数,以提高星地量子链路的可靠性。
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1878
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