Secure Quantum Key Distribution Over VLC Networks for Next-Generation Smart Cities

3Citations
Citations of this article
16Readers
Mendeley users who have this article in their library.

This article is free to access.

Abstract

Next-generation smart cities are increasingly reliant on high-speed, secure communication systems to support 6 G networks, IoT infrastructure, and autonomous systems. Classical cryptographic techniques are becoming vulnerable to quantum computing attacks, prompting the integration of quantum-secure communication mechanisms. In this context, Quantum Key Distribution (QKD) over Visible Light Communication (VLC) and Free Space Optical (FSO) networks offers a promising path toward ultra-secure, energy-efficient transmission. We propose an Entangled Photon Quantum Key Distribution (EP-QKD) framework that advances secure communication by integrating polarization-entangled photons, adaptive Quantum Bit Error Rate (QBER) optimization, and hybrid quantum-classical authentication anchored with blockchain. This advancement addresses critical limitations of traditional QKD systems—including high sensitivity to ambient interference, limited scalability, and high error rates—by employing entanglement-based noise resilience and real-time detection threshold control. Existing approaches to QoS and security—such as RSA-based encryption, BB84 and E91 protocols, and VLC-oriented modulation techniques—struggle with low secure key rates, high QBER under ambient light, and vulnerability to man-in-the-middle (MITM) attacks. EP-QKD overcomes these limitations by enhancing photon distribution fidelity, enabling decentralized authentication, and sustaining low error rates across dynamic urban optical environments. Experimental results demonstrate that EP-QKD achieves an average QBER of 1.2% and maintains QBER below 2.5% at 1000 lux, reducing errors by 40% over BB84 and 60% over E91. It attains secure key generation rates of over 1200 Mbps at 5 meters, outperforming BB84 and E91 by a significant margin. At 20 meters, EP-QKD maintains 300 Mbps, while BB84 drops to 40 Mbps. The MITM attack success rate is reduced to 0.01%, compared to 15% with BB84 + RSA. Additionally, EP-QKD achieves energy efficiency of 0.7 nJ/bit—nearly half of BB84’s requirement—making it suitable for energy-constrained IoT and mobile systems. Multi-user scalability testing confirms that EP-QKD can support up to 50 concurrent users with a key rate above 80 Mbps per user and QBER < 1.8%. A 3D analysis further shows that QBER remains below 5% even at 50 meters, demonstrating the framework’s robustness for long-distance secure optical communication. Overall, the proposed EP-QKD framework significantly enhances the performance, scalability, and resilience of quantum communication systems, making it a viable candidate for 6 G, IoT, and satellite-based secure infrastructure.

Cite

CITATION STYLE

APA

Al-Khazraji, A. A., Ali, A. M., Abdulridha, T. T., Rijab, M. M. A., & Al-Janabi, M. H. (2025). Secure Quantum Key Distribution Over VLC Networks for Next-Generation Smart Cities. International Journal of Networked and Distributed Computing, 13(2). https://doi.org/10.1007/s44227-025-00077-w

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free