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Main Authors: Gu, Huayue, Yu, Ruozhou, Li, Zhouyu, Wang, Xiaojian, Xue, Guoliang
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2501.15376
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author Gu, Huayue
Yu, Ruozhou
Li, Zhouyu
Wang, Xiaojian
Xue, Guoliang
author_facet Gu, Huayue
Yu, Ruozhou
Li, Zhouyu
Wang, Xiaojian
Xue, Guoliang
contents Entanglement distribution across remote distances is critical for many quantum applications. Currently, the de facto approach for remote entanglement distribution relies on optical fiber for on-the-ground entanglement distribution. However, the fiber-based approach is incapable of global-scale entanglement distribution due to intrinsic limitations. This paper investigates a new hybrid ground-satellite quantum network architecture (QuESat) for global-scale entanglement distribution, integrating an on-the-ground fiber network with a global-scale passive optical network built with low-Earth-orbit satellites. The satellite network provides dynamic construction of photon lightpaths based on near-vacuum beam guides constructed via adjustable arrays of lenses, forwarding photons from one ground station to another with very high efficiency over long distances compared to using fiber. To assess the feasibility and effectiveness of QuESat for global communication, we formulate lightpath provisioning and entanglement distribution problems, considering the orbital dynamics of satellites and the time-varying entanglement demands from ground users. A two-stage algorithm is developed to dynamically configure the beam guides and distribute entanglements, respectively. The algorithm combines randomized and deterministic rounding for lightpath provisioning to enable global connectivity, with optimal entanglement swapping for distributing entanglements to meet users' demands. By developing a ground-satellite quantum network simulator, QuESat achieves multi-fold improvements compared to repeater networks.
format Preprint
id arxiv_https___arxiv_org_abs_2501_15376
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle QuESat: Satellite-Assisted Quantum Internet for Global-Scale Entanglement Distribution
Gu, Huayue
Yu, Ruozhou
Li, Zhouyu
Wang, Xiaojian
Xue, Guoliang
Quantum Physics
Networking and Internet Architecture
Entanglement distribution across remote distances is critical for many quantum applications. Currently, the de facto approach for remote entanglement distribution relies on optical fiber for on-the-ground entanglement distribution. However, the fiber-based approach is incapable of global-scale entanglement distribution due to intrinsic limitations. This paper investigates a new hybrid ground-satellite quantum network architecture (QuESat) for global-scale entanglement distribution, integrating an on-the-ground fiber network with a global-scale passive optical network built with low-Earth-orbit satellites. The satellite network provides dynamic construction of photon lightpaths based on near-vacuum beam guides constructed via adjustable arrays of lenses, forwarding photons from one ground station to another with very high efficiency over long distances compared to using fiber. To assess the feasibility and effectiveness of QuESat for global communication, we formulate lightpath provisioning and entanglement distribution problems, considering the orbital dynamics of satellites and the time-varying entanglement demands from ground users. A two-stage algorithm is developed to dynamically configure the beam guides and distribute entanglements, respectively. The algorithm combines randomized and deterministic rounding for lightpath provisioning to enable global connectivity, with optimal entanglement swapping for distributing entanglements to meet users' demands. By developing a ground-satellite quantum network simulator, QuESat achieves multi-fold improvements compared to repeater networks.
title QuESat: Satellite-Assisted Quantum Internet for Global-Scale Entanglement Distribution
topic Quantum Physics
Networking and Internet Architecture
url https://arxiv.org/abs/2501.15376