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具有可控共振的新型硅双足圆柱体及其作为波束转向超表面的应用。

Novel silicon bipodal cylinders with controlled resonances and their use as beam steering metasurfaces.

作者信息

Fawzy Samar M, Mahmoud Ahmed M, Ismail Yehea I, Allam Nageh K

机构信息

Department of Electronics and Communications Engineering, School of Sciences and Engineering, The American University in Cairo, Cairo, 11835, Egypt.

Energy Materials Laboratory, School of Sciences and Engineering, The American University in Cairo, Cairo, 11835, Egypt.

出版信息

Sci Rep. 2021 Jul 1;11(1):13635. doi: 10.1038/s41598-021-93041-x.

Abstract

Metasurfaces have paved the way for high performance wavefront shaping and beam steering applications. Phase-gradient metasurfaces (PGM) are of high importance owing to the powerful and relatively systematic tool they offer for manipulating electromagnetic wave fronts and achieving various functionalities. Herein, we numerically present a novel unit cell known as bipodal cylinders (BPC), made of Silicon (Si) and placed on a Silicon dioxide (SiO) substrate to be compatible with CMOS fabrication techniques and to avoid field leakage into a high index substrate. Owing to its geometrical structure, the BPC structure provides a promising unit cell for electromagnetic wave manipulation. We show that BPC offers a way to shift the electric dipole mode to a frequency higher than that of the magnetic dipole mode. We investigate the effect of varying different geometrical parameters on the performance of such unit cell. Building on that, a metasurface is then presented that can achieve efficient electromagnetic beam steering with high transmission of 0.84 and steering angle of 15.2°; with very good agreement with the theoretically predicted angle covering the whole phase range from 0 to 2[Formula: see text].

摘要

超表面为高性能波前整形和波束控制应用铺平了道路。相位梯度超表面(PGM)非常重要,因为它们为操纵电磁波前和实现各种功能提供了强大且相对系统的工具。在此,我们通过数值方法展示了一种新型单元结构,即双足圆柱(BPC),它由硅(Si)制成,并放置在二氧化硅(SiO)衬底上,以与CMOS制造技术兼容,并避免场泄漏到高折射率衬底中。由于其几何结构,BPC结构为电磁波操纵提供了一种有前景的单元结构。我们表明,BPC提供了一种将电偶极子模式转移到高于磁偶极子模式频率的方法。我们研究了改变不同几何参数对这种单元结构性能的影响。在此基础上,提出了一种超表面,它可以实现高效的电磁波束控制,具有0.84的高透射率和15.2°的转向角;与理论预测角度非常吻合,覆盖了从0到2[公式:见正文]的整个相位范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2488/8249426/66908007b213/41598_2021_93041_Fig1_HTML.jpg

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