Enhanced Information Security via Wave-Field Selectivity and Structured Wavefront Manipulation
Yufei Zhao, Deyu Lin, Qian Zhang, Haoyang Shi, Hong Niu, Afkar Mohamed Ismail, Yong Liang Guan, and Chau Yuen

TL;DR
This paper introduces a dual-channel wireless security system using vortex waves and programmable meta-surfaces, enabling secure, high-capacity transmission with physical-layer encryption without complex joint decoding.
Contribution
It presents a novel architecture combining spatial field modulation and digital bandpass modulation via vortex waves and meta-surfaces, enhancing security and capacity in wireless communications.
Findings
Experimental validation confirms reliable secure transmission.
Dual-channel design enhances physical-layer security.
Prototype demonstrates practical feasibility in real-world conditions.
Abstract
In this paper, we propose a novel secure wireless transmission architecture that enables the co-existence of spatial field modulation (SFM) and digital bandpass modulation (DBM), utilizing multi-mode vortex waves and programmable meta-surfaces (PMS). Distinct from conventional joint modulation schemes, our approach establishes two logically independent transmission channels--SFM and DBM--thereby eliminating the need for joint signal design or time synchronization. Specifically, the orthogonality of vortex wave modes is exploited to construct a high-capacity multi-mode DBM channel, in which each mode carries modulated symbols independently. As the composite waveform passes through the PMS, energy from different vortex modes is spatially focused onto distinct positions, dynamically determined by the PMS configuration. This spatial mapping forms a unique lookup table that encodes…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Orbital Angular Momentum in Optics · Metamaterials and Metasurfaces Applications
