Optoelectronics and Measurement Techniques Research Unit, Faculty of Information Technology and Electrical Engineering, University of Oulu, Oulu, Finland.
Sci Rep. 2023 Mar 1;13(1):3433. doi: 10.1038/s41598-023-30605-z.
In this paper, a graphene-based multi-functional anisotropic metamaterial composed of two finite parallel graphene ribbons in each unit cell is designed and proposed in the 0.1-5.5 terahertz (THz) region. Simulations are performed by the finite element method (FEM) in the frequency-domain solver of CST Software. An equivalent circuit modeling (ECM) as a simplified approach has been provided by a MATLAB code to model the performance of the metamaterial. The metastructure is polarization-sensitive because of the geometric non-symmetry. The absorption/reflection spectrum of the metamaterial is dynamically tunable by changing the Fermi energy level of the graphene. The introduced metamaterial can act as a THz switch and inverter at 1.23 and 4.21 THz. It acts as an ON state when the incident electric field is in the x-direction and acts as an OFF state when the incident electric field is in the y-direction. It can also act as a bi-functional mirror: a triple-band mirror for the incident electric field in the x-direction and an ultra-broadband mirror for the incident electric field in the y-direction. The proposed metamaterial has a maximum absorption of 100%, maximum linear dichroism (LD) of 100%, and a maximum switching extinction ratio of 33.01 dB. The metamaterial and its applications could be used as a potential platform in future THz devices and systems.
本文在 0.1-5.5 太赫兹(THz)频段设计并提出了一种由每个单元中两个有限平行石墨烯条带组成的基于石墨烯的多功能各向异性超材料。采用 CST 软件频域求解器中的有限元法(FEM)进行了模拟。通过 MATLAB 代码提供了一种等效电路建模(ECM)作为简化方法来模拟超材料的性能。由于几何非对称性,该亚结构具有偏振敏感性。通过改变石墨烯的费米能级,超材料的吸收/反射光谱可以动态调谐。所提出的超材料可以在 1.23 和 4.21 THz 处充当 THz 开关和逆变器。当入射电场在 x 方向时,它处于导通状态,当入射电场在 y 方向时,它处于截止状态。它还可以充当双功能镜:x 方向入射电场的三频镜和 y 方向入射电场的超宽带镜。所提出的超材料具有 100%的最大吸收率、100%的最大线二色性(LD)和 33.01 dB 的最大开关消光比。该超材料及其应用可以作为未来 THz 器件和系统中的潜在平台。