通过望远镜到smf耦合的c波段融合卫星-光纤QKD链路的可行性

IF 1.6 4区 计算机科学 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Aristeidis Stathis, Argiris Ntanos, Panagiotis Kourelias, Nikolaos K. Lyras, Giannis Giannoulis, Athanasios D. Panagopoulos, Hercules Avramopoulos
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引用次数: 0

摘要

本文针对1550nm波长的低地球轨道(LEO)卫星对地下行通信进行了量子密钥分发(QKD)的综合可行性分析。选择这种波长是因为它与地面光纤网络兼容,允许在更长的距离上分发量子密钥。该分析模拟了一个离散变量诱饵状态BB84协议,强调了系统对光地面站(OGS)接收器的设计要求,包括影响单模光纤(SMF)耦合效率的关键参数。通过扩展模拟,我们评估了大气条件、湍流效应和自适应光学(AO)校正,以评估它们对光耦合效率和可实现的关键速率的影响。结果强调了AO在保持安全密钥速率方面的优势,特别是在高海拔卫星通道下,并量化了在不同湍流水平和额外光纤传输损失下可实现的密钥量。我们的研究结果表明,基于LEO卫星的QKD下行链路可以与地面光纤系统集成,在潜在的大地理区域内支持安全密钥分发,而不需要OGSs作为可信节点。这项工作的结果为实现强大的卫星到地面QKD链路所需的技术要求和配置提供了实用的见解,为未来全球量子安全通信基础设施的发展奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Feasibility of C-Band Converged Satellite-Fibre QKD Links Through Telescope-to-SMF Coupling

Feasibility of C-Band Converged Satellite-Fibre QKD Links Through Telescope-to-SMF Coupling

This study presents a comprehensive feasibility analysis of low Earth orbit (LEO) satellite-to-ground downlink communication for quantum key distribution (QKD), focusing on 1550 nm wavelength. This wavelength is selected for its compatibility with terrestrial fibre-optic networks, allowing the distribution of quantum keys over extended distances. The analysis models a discrete variable decoy state BB84 protocol, emphasising the system's design requirements for the optical ground station (OGS) receiver, including critical parameters that affect single-mode fibre (SMF) coupling efficiency. Through extended simulations, we assess atmospheric conditions, turbulence effects and adaptive optics (AO) correction to evaluate their impact on light coupling efficiency and achievable key rates. Results highlight the advantage of AO in sustaining secure key rates, particularly under high-elevation satellite passes, and quantify the key volumes attainable across varying levels of turbulence and additional fibre transmission losses. Our findings demonstrate that LEO satellite-based QKD downlinks can be feasibly integrated with terrestrial fibre systems, supporting secure key distribution over potentially large geographic areas without requiring OGSs to be trusted nodes. The results of this work provide practical insights into the technical requirements and configurations needed to realise robust satellite-to-ground QKD links, laying a foundation for future advancements in global quantum-secure communication infrastructure.

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来源期刊
Iet Optoelectronics
Iet Optoelectronics 工程技术-电信学
CiteScore
4.50
自引率
0.00%
发文量
26
审稿时长
6 months
期刊介绍: IET Optoelectronics publishes state of the art research papers in the field of optoelectronics and photonics. The topics that are covered by the journal include optical and optoelectronic materials, nanophotonics, metamaterials and photonic crystals, light sources (e.g. LEDs, lasers and devices for lighting), optical modulation and multiplexing, optical fibres, cables and connectors, optical amplifiers, photodetectors and optical receivers, photonic integrated circuits, photonic systems, optical signal processing and holography and displays. Most of the papers published describe original research from universities and industrial and government laboratories. However correspondence suggesting review papers and tutorials is welcomed, as are suggestions for special issues. IET Optoelectronics covers but is not limited to the following topics: Optical and optoelectronic materials Light sources, including LEDs, lasers and devices for lighting Optical modulation and multiplexing Optical fibres, cables and connectors Optical amplifiers Photodetectors and optical receivers Photonic integrated circuits Nanophotonics and photonic crystals Optical signal processing Holography Displays
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