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All-Angle Scanning Leaky-Wave Antennas and Surface-Wave Routing by Reconfigurable Metasurfaces

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arxiv 2506.14954 v1 pith:YRO3BWUP submitted 2025-06-17 physics.optics

classification physics.optics
keywords leaky-waveantennaarrayspowerall-angleallowsanglesantennas
verification ladder T0 review T1 audit T2 compute T3 formal
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In this work, we show that propagating waves can be fully converted into surface waves and back using geometrically periodic arrays of simple electrically small metal elements loaded by adjustable reactive loads. The proposed approach allows the creation of all-angle scanning leaky-wave antennas with perfect or even superdirective aperture efficiency at all scan angles. Moreover, it is possible to co-design such leaky-wave antenna arrays with surface-wave waveguides that can guide the received power to the load or to another leaky-wave antenna section. That second section can either reradiate the received power into any direction or perform some other transformation of the reradiated wave front, for example, focusing the power at a point. These and other functionalities are realized by global optimization of the reactive loads of array elements. This global optimization, together with the use of arrays with a subwavelength geometrical period, allows proper control over both propagating and evanescent-field distributions, ensuring theoretically perfect performance at arbitrary scan angles. The proposed technique can be used in antenna engineering and in advanced designs of reconfigurable intelligent surfaces.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Efficient Scattering Synthesis for Beyond-Diagonal Non-Local RISs Coupled with Passive Load Networks

    physics.app-ph 2026-03 conditional novelty 6.0 of 10

    By adding a tunable non-radiating coupling network behind a patch array, the authors synthesize beyond-diagonal load matrices that achieve near-perfect (or >100% for finite apertures) anomalous reflection at half-wave...

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