Space Science Center (ANGKASA), Universiti Kebangsaan Malaysia, UKM, 43600, Bangi, Selangor, Malaysia.
Department of Electrical, Electronic & Systems Engineering, Universiti Kebangsaan Malaysia, UKM, 43600, Bangi, Selangor, Malaysia.
Sci Rep. 2022 Jun 29;12(1):10958. doi: 10.1038/s41598-022-14911-6.
Despite their widespread use for performing advanced electromagnetic properties, metamaterial suffers from several restrictions in this technological era. Generally, technology affects the way individuals communicate, learn, think and plays an important role in society today. For this reason, there has been a surge of interest in a coding metamaterial field that possesses the ability to manipulate electromagnetic waves and realize different functionalities. This research work investigates circular-shaped coding metamaterial for microwave frequency applications through several analyses. First, the 1-bit coding metamaterial that is made up of only "0" and "1" elements with 0 and π phase responses by adopting two types of unit cells such as square-shaped Rogers RT6002 substrate material with and without metamaterial structure were analysed in this work. The proposed element '1' successfully manifests several more than 180○ phase responses at several frequency ranges, for instance, 7.35 to 9.48 GHz, 12.87 to 14.25 GHz and 17.49 to 18 GHz (C, X, and Ku-bands), respectively. Besides that, three types of coding sequences were proposed and the radar cross-section (RCS) reduction values of the designs were numerically calculated by utilising Computer Simulation Technology (CST) software. Meanwhile, the single-layered coding metamaterial with 6 lattices was compared with double and triple-layered metamaterial structures. At 2 GHz, the triple-layered structure exhibit reduced RCS values with near to - 30 dBm for all coding sequences. Therefore, the transmission coefficient results of the triple-layered coding metamaterial sequences were numerically calculated. Several advanced coding metamaterial designs were constructed and the properties were discussed in terms of RCS values and scattering patterns. Meanwhile, the scattering and effective medium parameters of the unit cell metamaterial structure were also analysed in this work. In a nutshell, the 1-bit coding metamaterial in a controlled sequence can control electromagnetic waves and realize different functionalities.
尽管超材料在实现先进的电磁特性方面得到了广泛应用,但在当前技术时代,它仍存在一些限制。一般来说,技术影响着人们沟通、学习、思考的方式,在当今社会中发挥着重要作用。出于这个原因,人们对编码超材料领域产生了浓厚的兴趣,该领域具有操控电磁波和实现不同功能的能力。本研究工作通过多种分析方法研究了用于微波频率应用的圆形编码超材料。首先,本工作分析了由仅包含“0”和“1”元素的 1 位编码超材料,这些元素通过采用两种类型的单元结构,即具有和不具有超材料结构的方形罗杰斯 RT6002 基板材料,实现了 0 和 π 相位响应。所提出的元素“1”在几个频率范围内成功地表现出多个超过 180○的相位响应,例如 7.35 至 9.48 GHz、12.87 至 14.25 GHz 和 17.49 至 18 GHz(C、X 和 Ku 波段)。此外,本研究提出了三种编码序列,并利用计算机仿真技术(CST)软件数值计算了设计的雷达散射截面(RCS)减少值。同时,将具有 6 个晶格的单层编码超材料与双层和三层超材料结构进行了比较。在 2 GHz 时,所有编码序列的三层结构都表现出 RCS 值接近-30 dBm 的降低。因此,数值计算了三层编码超材料序列的传输系数结果。构建了几种先进的编码超材料设计,并根据 RCS 值和散射图案讨论了它们的特性。同时,本工作还分析了单元超材料结构的散射和有效媒质参数。总之,控制序列中的 1 位编码超材料可以控制电磁波并实现不同的功能。