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Mauro Ettorre

Publications and source records attributed to Mauro Ettorre.

2 recordsLinked to original sources

Plane-Wave Excitation of Multi-Beam Modulated Metasurface Antennas

This paper explores the design of multibeam metasurface (MTS) antennas excited by multi-directional plane-wave launchers. First, we solve the fundamental yet open problem of a plane surface wave (SW) that propagates obliquely to the modulation direction of a sinusoidally modulated MTS. Closed-form expressions are provided to accurately predict the beam pointing angles for any propagation direction of the illuminating plane SW and for any Floquet harmonic. Then, the proposed formulation is used to design a highly directive multibeam MTS antenna at K-band with linear polarization. The designed antenna combines an MTS and a pillbox quasi-optical beamformer arranged in a very compact space. A pillbox is a double-layer structure that embeds a reflector coupled to multiple primary feeds in the lower layer. The beams launched by the primary feeds are thus transformed into plane waves with different directions in the upper layer. Printing a modulated MTS in the upper layer results in a low-profile, multibeam antenna suitable for PCB fabrication. Experimental results validate the proposed formulation. The fabricated MTS antenna exhibits a maximum directivity of 30.5 dB and a 17.5% fractional -3 dB directivity bandwidth over the 19.7-21.7 GHz band. By switching feeds and modifying the operating frequency, the scanning range is [$3^o$,$35^o$] in elevation and [$-76^o$,$+76^o$] in azimuth. Additionally, different antenna designs are included that demonstrate the validity and generality of the derived formulation. The proposed multibeam concept can be exploited in satellite communications and 5G/6G networks.

physics.app-ph↗

Leaky-Wave Antenna Analysis using Multi-Modal Network Theory with Open Periodic Boundaries

This paper introduces two methods for analyzing periodic leaky-wave antennas (LWAs) within a new framework denoted as multi-modal network theory (MNT) with open periodic boundaries (OPBs). The approach is hybrid, combining analytical techniques with a commercial full-wave solver. The first method computes the dispersion diagram of periodic LWAs. It is iterative and relies on the full-wave simulation of a single unit-cell of a LWA, coupled with the analytical solution of an eigenvalue problem. This method effectively captures both the phase and attenuation constants of periodic LWAs while using fewer modes than previous methods with commercial frequency-domain solvers. The method is validated by computing the dispersion of classic LWA unit-cells and comparing them to those obtained through full-wave simulations of the full-length antenna and other state-of-the-art methods. The second, also based on OPB-MNT, focuses on LWA analysis in reception. Specifically, it determines the response of a unit-cell to an incident plane wave. To validate this method, we compute the response of LWA with different unit-cell designs. By comparing these results with the corresponding dispersion analysis, we show that the receiving case and the eigenvalue problem are related but not simply time-reversed versions of each other.

physics.optics↗