| Literature DB >> 28900223 |
Dan Wang1, Zhen Guo Liu1, Jie Zhao1, Qiang Cheng2, Tie Jun Cui3.
Abstract
An accurate method is proposed to design low-backscattering metasurfaces efficiently using an iterative Fourier transform algorithm, which avoids the large amount of time-consuming numerical simulations of complicated electromagnetic problems and provides satisfactory performance to reduce the backward scattering. As an example of the application, a broadband low-backscattering metasurface is designed, fabricated, and characterized. Both full-wave simulation and measured results reveal that the proposed method offers a rapid and efficient tool to manipulate the scattering behaviors of the metasurface, and thus realizes significant scattering reductions.Entities:
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Year: 2017 PMID: 28900223 PMCID: PMC5595866 DOI: 10.1038/s41598-017-11719-7
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The flowchart for the standard IFT algorithm.
Figure 2(a) Reflection amplitude and phase spectra for the ring resonator. Inset: geometric dimensions of the resonator. (b) The reflected phase of the ring resonator as functions of d1 (with a = 14.3 mm and d2 = 1.5 mm) and d2 (with a = 14.3 mm and d1 = 8.5 mm).
Figure 3(a,b) The initial array pattern and the reflection phase distributions of the metasurface composed of square ring resonators. (c,d) The calculated scattering pattern of the metallic control plate and the corresponding pattern at yoz plane. (e,f) The final array pattern and the reflection phase distributions of the metasurface. (g,h) The calculated scattering pattern of the synthesized metasurface and the corresponding pattern at yoz plane.
Figure 4Normalized scattering pattern of the metasurface in Fig. 3(e) at 10 GHz at xoz (a) and yoz (b) plane from the IFT method and full-wave simulation. Simulated (c) and measured (d) specular reflectivity spectra for the designed metasurface with the incidence angle varying from to 60°. Inset in (d): photograph of the fabricated sample.