Enhancing Performance of Continuous-Variable Quantum Key Distribution (CV-QKD) and Gaussian Modulation of Coherent States (GMCS) in Free-Space Channels under Individual Attacks with Phase-Sensitive Amplifier (PSA) and Homodyne Detection (HD)

Author:

Alshaer Nancy1ORCID,Ismail Tawfik23ORCID,Mahmoud Haitham4ORCID

Affiliation:

1. Department of EEC, Faculty of Engineering, Tanta University, Tanta 31527, Egypt

2. National Institute of Laser Enhanced Sciences, Cairo University, Giza 12613, Egypt

3. Department of Telecommunication Engineering, Taibah University, Medina P.O. Box 344, Saudi Arabia

4. Faculty of Computing, Engineering and Build Environment, Birmingham City University, Birmingham B4 7XG, UK

Abstract

In recent research, there has been a significant focus on establishing robust quantum cryptography using the continuous-variable quantum key distribution (CV-QKD) protocol based on Gaussian modulation of coherent states (GMCS). Unlike more stable fiber channels, one challenge faced in free-space quantum channels is the complex transmittance characterized by varying atmospheric turbulence. This complexity poses difficulties in achieving high transmission rates and long-distance communication. In this article, we thoroughly evaluate the performance of the CV-QKD/GMCS system under the effect of individual attacks, considering homodyne detection with both direct and reverse reconciliation techniques. To address the issue of limited detector efficiency, we incorporate the phase-sensitive amplifier (PSA) as a compensating measure. The results show that the CV-QKD/GMCS system with PSA achieves a longer secure distance and a higher key rate compared to the system without PSA, considering both direct and reverse reconciliation algorithms. With an amplifier gain of 10, the reverse reconciliation algorithm achieves a secure distance of 5 km with a secret key rate of 10−1 bits/pulse. On the other hand, direct reconciliation reaches a secure distance of 2.82 km.

Publisher

MDPI AG

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