Suppr超能文献

用于太赫兹频率应用的对称左旋分裂环谐振器超材料设计

Symmetric left-handed split ring resonator metamaterial design for terahertz frequency applications.

作者信息

Ramachandran Tayaallen, Faruque Mohammad Rashed Iqbal, Al-Mugren K S

机构信息

Space Science Center (ANGKASA), Universiti Kebangsaan Malaysia, UKM, 43600, Bangi, Selangor, Malaysia.

Physics Department, Science College, Princess Nourah Bint Abdulrahman University, Riyadh, Saudi Arabia.

出版信息

Sci Rep. 2023 Dec 9;13(1):21828. doi: 10.1038/s41598-023-49202-1.

Abstract

This work focused on the novel symmetrical left-handed split ring resonator metamaterial for terahertz frequency applications. A compact substrate material known as Silicon with a dimension of 5 µm was adopted in this research investigation. Moreover, several parameter studies were investigated, such as clockwise rotation, array and layer structure designs, larger-scale metamaterials, novel design structure comparisons and electric field distribution analysis. Meanwhile, two types of square-shaped metamaterial designs were proposed in this work. The proposed designs exhibit double and single resonance frequencies respectively, likely at 3.32 and 9.24 THz with magnitude values of - 16.43 and - 17.33 for the first design, while the second design exhibits a response at 3.03 THz with a magnitude value of - 19.90. Moreover, the verification of these results by adopting High-frequency Structure Simulator software indicates only slight discrepancies which are less than 5%. Furthermore, the initial response of the proposed designs was successfully altered by simply rotating the design clockwise or even increasing the dimension of the design. For instance, the first resonance frequency is shifted to the lower band when the first proposed design was rotated 90°. On the other hand, by increasing the size of the metamaterial, more than nine resonance frequencies were gained in each symmetric design. Furthermore, the symmetric metamaterial with a similar width and length of 10 µm dimension was adopted for both design structures to construct an equivalent circuit model by utilising Advanced Design System software. Finally, both unit cell designs were utilised to explore the absorption performances which exhibit four and five peak points. Overall, the altering behaviour by changing physical properties and compact design with acceptable responses become one of the novelties of this research investigation. In a nutshell, the proposed designs can be utilised in terahertz frequency which gives optimistic or advantageous feedback and is relatively suitable for the adopted frequency range.

摘要

这项工作聚焦于用于太赫兹频率应用的新型对称左手分裂环谐振器超材料。本研究采用了一种尺寸为5微米的名为硅的紧凑型衬底材料。此外,还进行了多项参数研究,如顺时针旋转、阵列和层结构设计、更大规模的超材料、新型设计结构比较以及电场分布分析。同时,本工作提出了两种方形超材料设计。所提出的设计分别呈现出双共振频率和单共振频率,第一种设计的双共振频率可能在3.32太赫兹和9.24太赫兹,幅度值分别为-16.43和-17.33,而第二种设计在3.03太赫兹处呈现响应,幅度值为-19.90。此外,采用高频结构模拟器软件对这些结果进行验证表明,差异仅为5%以内的微小差异。此外,通过简单地顺时针旋转设计甚至增加设计尺寸,所提出设计的初始响应成功地发生了改变。例如,当第一种提出的设计顺时针旋转90°时,第一共振频率移至较低频段。另一方面,通过增加超材料的尺寸,每个对称设计获得了九个以上的共振频率。此外,两种设计结构均采用了尺寸为10微米、宽度和长度相似的对称超材料,以利用先进设计系统软件构建等效电路模型。最后,两种单元胞设计均用于探索具有四个和五个峰值点的吸收性能。总体而言,通过改变物理特性实现的改变行为以及具有可接受响应的紧凑设计成为了本研究的新颖之处之一。简而言之,所提出的设计可用于太赫兹频率,能给出乐观或有利的反馈,并且相对适用于所采用的频率范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce07/10710494/98ab7e38ebd9/41598_2023_49202_Fig1_HTML.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验