Polarization-dependent bi-functional metasurface for directive radiation and diffusion-like scattering
In this paper, we design a bi-functional metasurface with different spatial distribution of reflection phase responses depending on the incident polarization. The metasurface with a thickness of only 0.067 λ 0 (λ 0 is the working wavelength) is constructed by unit cells composing two orthogonal I-sh...
Saved in:
Published in | AIP advances Vol. 7; no. 11; pp. 115214 - 115214-9 |
---|---|
Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Melville
American Institute of Physics
01.11.2017
AIP Publishing LLC |
Subjects | |
Online Access | Get full text |
Cover
Loading…
Summary: | In this paper, we design a bi-functional metasurface with different spatial distribution of reflection phase responses depending on the incident polarization. The metasurface with a thickness of only 0.067 λ
0 (λ
0 is the working wavelength) is constructed by unit cells composing two orthogonal I-shaped metallic structures, and the reflection phase for x- and y-linearly polarized incidence can be independently controlled by the geometric parameters. The metasurface can work as a flat parabolic reflector antenna with a maximum gain reaching about 22 dBi around 9.5 GHz, when it is illuminated by the x-polarized feed source of an offset open-ended waveguide antenna. Meanwhile, designed with randomly distributed reflection phases, the proposed metasurface can behave as an electromagnetic (EM) diffusion-like surface, which is capable of suppressing the backward scattering in a broadband from 8.5 GHz to 14 GHz for y-polarized incidence. By this strategy of EM functionality integration, a metasurface reflector antenna equipped with stealth technique to achieve simultaneously high gain and low backward scattering is obtained. Finally, experiments have been carried out to demonstrate this design principle, which agree with the simulation results. The proposed metasurface could offer a promising route for designing EM devices with polarization-dependent multi-functionalities. |
---|---|
ISSN: | 2158-3226 2158-3226 |
DOI: | 10.1063/1.4998205 |