Plane-Wave Spectrum Analysis of Spherical Wave Absorption and Reflection by Metasurface Absorber

A metasurface absorber capable of monitoring two-dimensional (2-d) electric field distributions has been developed, where a matrix of lumped resistors between surface patches formed on a mushroom-type structure works as a 2-d array of short dipole sensors. In this paper absorption and reflection of...

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Veröffentlicht in:IEICE Transactions on Communications 2023/11/01, Vol.E106.B(11), pp.1182-1191
Hauptverfasser: VAN, Tu NGUYEN, YAGITANI, Satoshi, SHIMIZU, Kensuke, NISHI, Shinjiro, OZAKI, Mitsunori, IMACHI, Tomohiko
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Sprache:eng
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Zusammenfassung:A metasurface absorber capable of monitoring two-dimensional (2-d) electric field distributions has been developed, where a matrix of lumped resistors between surface patches formed on a mushroom-type structure works as a 2-d array of short dipole sensors. In this paper absorption and reflection of a spherical wave incident on the metasurface absorber are analyzed by numerical computation by the plane-wave spectrum (PWS) technique using 2-d Fourier analysis. The electromagnetic field of the spherical wave incident on the absorber surface is expanded into a large number of plane waves, for each of which the TE and TM reflection and absorption coefficients are applied. Then by synthesizing all the plane wave fields we obtain the spatial distributions of reflected and absorbed fields. The detailed formulation of the computation is described, and the computed field distributions are compared with those obtained by simulation and actual measurement when the spherical wave from a dipole is illuminated onto a metasurface absorber. It is demonstrated that the PWS technique is effective and efficient in obtaining the accurate field distributions of the spherical wave on and around the absorber. This is useful for evaluating the performance of the metasurface absorber to absorb and measure the spherical wave field distributions around an EM source.
ISSN:0916-8516
1745-1345
DOI:10.1587/transcom.2023EBP3035