Metasurfaces (MTSs) represent a class of artificial materials composed of subwavelength structures that can be engineered to manipulate electromagnetic waves in a highly controlled and tailored manner. At microwaves, MTSs are typically implemented as dense patterns of electrically small patches printed on a dielectric slab, and modulation is achieved by varying the size and/or the shape of the patches. Thanks to the subwavelength dimensions of the patches, the macroscopic behaviour of a MTS can be conveniently described in terms of homogenized quantities, like equivalent impedance or refractive index, which significantly simplifies the design. Nevertheless, a rigorous full wave analysis of the real structure is always needed to fully assess the performances, especially in terms of frequency behaviour and tolerance sensitivity. However, the model of MTS-based devices is inherently multiscale, which implies high computational complexity, possibly accompanied by ill conditioning.
Giusti, F., Caminita, F., Maci, S., Martini, E. (2024). Integral Equation Method with Customized Entire Domain Basis Functions for the Efficient Analysis of Metasurfaces Consisting of Arbitrarily Shaped Elements. In 2024 IEEE INC-USNC-URSI Radio Science Meeting (Joint with AP-S Symposium) (pp.278-278). New York : IEEE [10.23919/inc-usnc-ursi61303.2024.10632354].
Integral Equation Method with Customized Entire Domain Basis Functions for the Efficient Analysis of Metasurfaces Consisting of Arbitrarily Shaped Elements
Giusti, Federico;Maci, Stefano
;Martini, Enrica
2024-01-01
Abstract
Metasurfaces (MTSs) represent a class of artificial materials composed of subwavelength structures that can be engineered to manipulate electromagnetic waves in a highly controlled and tailored manner. At microwaves, MTSs are typically implemented as dense patterns of electrically small patches printed on a dielectric slab, and modulation is achieved by varying the size and/or the shape of the patches. Thanks to the subwavelength dimensions of the patches, the macroscopic behaviour of a MTS can be conveniently described in terms of homogenized quantities, like equivalent impedance or refractive index, which significantly simplifies the design. Nevertheless, a rigorous full wave analysis of the real structure is always needed to fully assess the performances, especially in terms of frequency behaviour and tolerance sensitivity. However, the model of MTS-based devices is inherently multiscale, which implies high computational complexity, possibly accompanied by ill conditioning.File | Dimensione | Formato | |
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https://hdl.handle.net/11365/1277548