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Article

Practical Performance Analysis of MDI-QKD with Orbital Angular Momentum on UAV Relay Platform

1
Information and Navigation College, Air Force Engineering University, Xi’an 710077, China
2
National Key Laboratory of Complex Aviation System Simulation, Beijing 100101, China
*
Authors to whom correspondence should be addressed.
Entropy 2024, 26(8), 635; https://doi.org/10.3390/e26080635 (registering DOI)
Submission received: 20 May 2024 / Revised: 23 July 2024 / Accepted: 25 July 2024 / Published: 27 July 2024
(This article belongs to the Special Issue Progress in Quantum Key Distribution)

Abstract

The integration of terrestrial- and satellite-based quantum key distribution (QKD) experiments has markedly advanced global-scale quantum networks, showcasing the growing maturity of quantum technologies. Notably, the use of unmanned aerial vehicles (UAVs) as relay nodes has emerged as a promising method to overcome the inherent limitations of fiber-based and low-Earth orbit (LEO) satellite connections. This paper introduces a protocol for measurement-device-independent QKD (MDI-QKD) using photon orbital angular momentum (OAM) encoding, with UAVs as relay platforms. Leveraging UAV mobility, the protocol establishes a secure and efficient link, mitigating threats from untrusted UAVs. Photon OAM encoding addresses reference frame alignment issues exacerbated by UAV jitter. A comprehensive analysis of atmospheric turbulence, state-dependent diffraction (SDD), weather visibility, and pointing errors on free-space OAM-state transmission systems was conducted. This analysis elucidates the relationship between the key generation rate and propagation distance for the proposed protocol. Results indicate that considering SDD significantly decreases the key rate, halving previous data results. Furthermore, the study identifies a maximum channel loss capacity of 26 dB for the UAV relay platform.This result is pivotal in setting realistic parameters for the deployment of UAV-based quantum communications and lays the foundation for practical implementation strategies in the field.
Keywords: orbital angular momentum; MDI-QKD; unmanned aerial vehicles; atmospheric turbulence; state-dependent diffraction; weather visibility orbital angular momentum; MDI-QKD; unmanned aerial vehicles; atmospheric turbulence; state-dependent diffraction; weather visibility

Share and Cite

MDPI and ACS Style

Wu, D.; Li, J.; Yang, L.; Deng, Z.; Tang, J.; Cao, Y.; Liu, Y.; Hu, H.; Wang, Y.; Yu, H.; et al. Practical Performance Analysis of MDI-QKD with Orbital Angular Momentum on UAV Relay Platform. Entropy 2024, 26, 635. https://doi.org/10.3390/e26080635

AMA Style

Wu D, Li J, Yang L, Deng Z, Tang J, Cao Y, Liu Y, Hu H, Wang Y, Yu H, et al. Practical Performance Analysis of MDI-QKD with Orbital Angular Momentum on UAV Relay Platform. Entropy. 2024; 26(8):635. https://doi.org/10.3390/e26080635

Chicago/Turabian Style

Wu, Dan, Jiahao Li, Lan Yang, Zhifeng Deng, Jie Tang, Yuexiang Cao, Ying Liu, Haoran Hu, Ya Wang, Huicun Yu, and et al. 2024. "Practical Performance Analysis of MDI-QKD with Orbital Angular Momentum on UAV Relay Platform" Entropy 26, no. 8: 635. https://doi.org/10.3390/e26080635

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