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Arbitrary and Rigorous Aperture Illumination Synthesis in Huygens Metasurface Leaky-Wave Antennas
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  • Pablo Mateos-Ruiz,
  • Vinay Kumar Killamsetty,
  • Ariel Epstein,
  • Elena Abdo-Sánchez
Pablo Mateos-Ruiz
Telecommunication Research Institute (TELMA), University of Málaga, 29010 Málaga, Spain

Corresponding Author:pablomr@ic.uma.es

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Vinay Kumar Killamsetty
Andrew and Erna Viterbi Faculty of Electrical and Computer Engineering, Technion–Israel Institute of Technology, Haifa 32000, Israel
Ariel Epstein
Andrew and Erna Viterbi Faculty of Electrical and Computer Engineering, Technion–Israel Institute of Technology, Haifa 32000, Israel
Elena Abdo-Sánchez
Telecommunication Research Institute (TELMA), University of Málaga, 29010 Málaga, Spain
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Abstract

Omega-type bianisotropic Huygens' metasurfaces offer a novel approach for controlling the aperture field distribution of leaky-wave antennas. This paper presents a methodology utilizing a parallel-plate waveguide with a metasurface as its top plate. Previous limitations on constant leakage factor are addressed using a slowly varying amplitude approximation in order to satisfy Maxwell's wave equation, enabling the design of the radiation pattern. A semi-analytical algorithm is employed to obtain the required multi-layer unit-cell geometries. Here, the inter-layer coupling is taken into account, enabling an efficient synthesis of these antennas. Several designs presenting different pointing angles and aperture field distributions are carried out, showing very good agreement between theory and realistic simulations without further full-wave optimization. Finally, the design process is experimentally validated through several prototypes, whose measurements are shown and discussed. These results, demonstrating straightforward semi-analytical synthesis of versatile aperture profiles, would significantly broaden the applicability of such antennas in next-generation wireless systems.
2025Published in IEEE Transactions on Antennas and Propagation on pages 1-1. 10.1109/TAP.2025.3550345