College of Information Engineering, Communication University of China, Beijing 100024, China.
Department of Electrical and Computer Engineering, University of Nebraska-Lincoln, NE, 68182, USA.
Sci Rep. 2017 Feb 9;7:42283. doi: 10.1038/srep42283.
In this paper, an ultra-wideband, wide angle and polarization-insensitive metasurface is designed, fabricated, and characterized for suppressing the specular electromagnetic wave reflection or backward radar cross section (RCS). Square ring structure is chosen as the basic meta-atoms. A new physical mechanism based on size adjustment of the basic meta-atoms is proposed for ultra-wideband manipulation of electromagnetic (EM) waves. Based on hybrid array pattern synthesis (APS) and particle swarm optimization (PSO) algorithm, the selection and distribution of the basic meta-atoms are optimized simultaneously to obtain the ultra-wideband diffusion scattering patterns. The metasurface can achieve an excellent RCS reduction in an ultra-wide frequency range under x- and y-polarized normal incidences. The new proposed mechanism greatly extends the bandwidth of RCS reduction. The simulation and experiment results show the metasurface can achieve ultra-wideband and polarization-insensitive specular reflection reduction for both normal and wide-angle incidences. The proposed methodology opens up a new route for realizing ultra-wideband diffusion scattering of EM wave, which is important for stealth and other microwave applications in the future.
本文设计、制作并表征了一种超宽带、宽角和偏振不敏感的超表面,用于抑制镜面电磁波反射或后向雷达散射截面 (RCS)。选择方环结构作为基本超原子。提出了一种基于基本超原子尺寸调整的新物理机制,用于超宽带电磁波操纵。基于混合阵列模式综合 (APS) 和粒子群优化 (PSO) 算法,同时优化基本超原子的选择和分布,以获得超宽带扩散散射模式。超表面可以在 x 极化和 y 极化正常入射下在超宽频率范围内实现优异的 RCS 降低。新提出的机制大大扩展了 RCS 降低的带宽。仿真和实验结果表明,超表面可以在正常和宽角入射下实现超宽带和偏振不敏感的镜面反射减少。所提出的方法为实现电磁波的超宽带扩散散射开辟了新途径,这对于未来隐身和其他微波应用非常重要。