From the generalized reflection law to the realization of perfect anomalous reflectors
Ana D\'iaz-Rubio, Viktar Asadchy, Amr Elsakka and, Sergei Tretyakov

TL;DR
This paper introduces a new design paradigm for perfect anomalous reflectors based on energy surface channeling, overcoming parasitic reflections and enabling precise wavefront control with thin, passive structures.
Contribution
It demonstrates the necessity of non-local responses for perfect reflection and experimentally verifies a novel design using metal patch arrays for anomalous wave steering.
Findings
Perfect anomalous reflection requires non-local responses.
The proposed design achieves near-ideal wavefront manipulation.
Experimental validation confirms the effectiveness of the new reflector design.
Abstract
The use of the generalized Snell's law opens wide possibilities for the manipulation of transmitted and reflected wavefronts. However, known structures designed to shape reflection wave fronts suffer from significant parasitic reflections in undesired directions: In fact, the desired field distributions do not satisfy Maxwell's equations if the boundary conditions are specified in accordance with the generalized Snell's law. In this work, we explore the limitations of the existing solutions for the design of passive planar reflectors and demonstrate that strongly non-local response is required for perfect performance. Ideal reflective surfaces capable of steering the energy into any desired direction have to localize and carry energy along the inhomogeneous reflective surface. A new paradigm for the design of perfect reflectors based on energy surface channeling is introduced. We…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Advanced Antenna and Metasurface Technologies · Antenna Design and Analysis
