On the Physical Layer Security of Visible Light Communications Empowered by Gold Nanoparticles
Geonho Han, Hyuckjin Choi, Ryeong Myeong Kim, Ki Tae Nam, Junil Choi,, and Theodoros A. Tsiftsis

TL;DR
This paper introduces a novel physical layer security method for visible light communication using gold nanoparticles with chiroptical properties, significantly enhancing secrecy even against close eavesdroppers.
Contribution
It develops a new VLC channel model incorporating GNP plates and linear polarizers, and optimizes polarizer angles to improve secrecy rate against eavesdroppers.
Findings
Secrecy rate is significantly increased with GNP plates.
The symbol error rate gap between legitimate receiver and eavesdropper is widened.
GNP-based security outperforms traditional methods in close proximity eavesdropping scenarios.
Abstract
Visible light is a proper spectrum for secure wireless communications because of its high directivity and impermeability in indoor scenarios. However, if an eavesdropper is located very close to a legitimate receiver, secure communications become highly risky. In this paper, to further increase the level of security of visible light communication (VLC) and increase its resilience against to malicious attacks, we propose to capitalize on the recently synthesized gold nanoparticles (GNPs) with chiroptical properties for circularly polarized light resulting the phase retardation that interacts with the linear polarizer angle. GNP plates made by judiciously stacking many GNPs perform as physical secret keys. Transmitters send both the intended symbol and artificial noise to exploit the channel variation effect by the GNP plates, which is highly effective when an eavesdropper is closely…
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Taxonomy
TopicsOptical Wireless Communication Technologies · Advanced Wireless Communication Technologies · Nanocluster Synthesis and Applications
