Equivalent circuit technique for designing split ring resonator based metasurfaces

IF 1.6 Q2 ENGINEERING, MULTIDISCIPLINARY Engineering Research Express Pub Date : 2024-09-17 DOI:10.1088/2631-8695/ad7230
Eliazar Elisha Audu, Akaa Agbaeze Eteng, Iyemeh Uchendu and Bourdillon O Omijeh
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Abstract

Metasurfaces are two-dimensional artificially engineered structures capable of manipulating the phase, direction and orientation of electromagnetic waves by exhibiting simultaneously negative values of permittivity and permeability. These unconventional properties have been tailored and explored in many applications such as in bio-sensors, waveguides and antennas. The split ring resonators are the commonly used constituent meta-atoms of metasurfaces whose design and analysis rely on commercially available numerical electromagnetic fields (EM) solvers and experimental analysis. These numerical EM solvers are based on meshing and partitioning of graphical structures into the desire grids or patches to solve Maxwell equations in discrete form. However, graphical rendering and meshing of 3D objects requires significant space-time computational resources to analyze the structure. With the cost of licenses of EM solvers being very expensive, analytical solution were explored. The use of LC resonant frequency analytical formula provides an approximate value of resonant frequency which is less accurate and does not gives information about the current characteristics induced on the constinuent meta-atom of a metasurface. This paper presents an analytical approach to the design and analysis of a doubly split double rings (DSRR) using lumped element equivalent circuit that can be solved by mesh network analysis. The resonant frequency is extracted from the induced current characteristics which agrees with simulations and experimental results. The resonant frequency errors for a single DSRR unit cell ranged from1.05% to 7%, and for two coupled DSRR unit cells, they ranged from 1.4% to 11%.
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设计基于分裂环谐振器的元表面的等效电路技术
元表面是一种人工设计的二维结构,能够通过同时表现出负值的介电常数和磁导率来操纵电磁波的相位、方向和取向。这些非常规特性已在生物传感器、波导和天线等许多应用中得到定制和探索。分裂环谐振器是超表面的常用元原子,其设计和分析依赖于市面上的数值电磁场(EM)求解器和实验分析。这些数值电磁场求解器以网格划分为基础,将图形结构划分为欲望网格或斑块,以离散形式求解麦克斯韦方程。然而,三维物体的图形渲染和网格划分需要大量的时空计算资源来分析结构。由于电磁求解器的许可证费用非常昂贵,因此人们开始探索分析解决方案。使用低电平谐振频率解析公式可以得到谐振频率的近似值,但其准确性较低,而且无法提供元表面的收缩元原子上感应电流特性的信息。本文介绍了一种设计和分析双分裂双环(DSRR)的分析方法,该方法使用可通过网格网络分析求解的块元等效电路。共振频率是从感应电流特性中提取出来的,与模拟和实验结果一致。单个 DSRR 单元的谐振频率误差在 1.05% 到 7% 之间,两个耦合 DSRR 单元的谐振频率误差在 1.4% 到 11% 之间。
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来源期刊
Engineering Research Express
Engineering Research Express Engineering-Engineering (all)
CiteScore
2.20
自引率
5.90%
发文量
192
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