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基于各向异性石墨烯的双曲线超材料的可调谐及超窄带多功能太赫兹器件

Tunable and ultra-narrowband multifunctional terahertz devices using anisotropic graphene based hyperbolic metamaterials.

作者信息

Tavana Shahab, Bahadori-Haghighi Shahram, Ye Winnie N

机构信息

Department of Electronics, Carleton University, Ottawa, ON, K1S 5B6, Canada.

Department of Communications and Electronics, School of Electrical and Computer Engineering, Shiraz University, Shiraz, Iran.

出版信息

Sci Rep. 2024 Dec 28;14(1):31303. doi: 10.1038/s41598-024-82763-3.

Abstract

In this paper, we propose a novel structure of anisotropic graphene-based hyperbolic metamaterial (AGHMM) sandwiched as a defect between two one-dimensional photonic crystals (PCs) in the terahertz (THz) region. The proposed structure is numerically simulated and analyzed using the transfer matrix method, effective medium theory and three-dimensional finite-difference time-domain. The defect layer of AGHMM consists of graphene sheets separated by subwavelength dielectric spacers. According to the presented results, a sharp defect mode originated from the optical Tamm state (OTS) takes place at the interfaces between PCs and AGHMM. The platform is then applied as various THz devices with outstanding characteristics compared with their previous counterparts. The performance of all the proposed devices can be tuned by changing the incident angle and graphene chemical potential. Our designed electro-optical modulator exhibits a high extinction ratio of 24.75 dB. The required switching voltage and insertion loss are as low as 9.94 V and 0.05 dB, respectively. Owing to the anisotropy of graphene, a tunable polarizer over wide incident angles is attained. The highest polarization extinction ratios (PERs) for TE- and TM-pass polarizers are 42.4 dB and 76.8 dB, respectively, which are the highest PER ever reported. By introducing more AGHMM defects, multiband tunable filters with quality factors of as high as 75314 are realized. Finally, a narrowband perfect absorber is proposed so that a high absorption of 99.8% with an ultra-narrow FWHM of 0.00055 THz is achieved. Hence, the proposed structure is a promising platform that could have many potential THz applications.

摘要

在本文中,我们提出了一种新型的基于各向异性石墨烯的双曲超材料(AGHMM)结构,该结构夹在太赫兹(THz)区域的两个一维光子晶体(PC)之间作为缺陷层。使用传输矩阵法、有效介质理论和三维时域有限差分法对所提出的结构进行了数值模拟和分析。AGHMM的缺陷层由被亚波长电介质间隔层隔开的石墨烯片组成。根据给出的结果,源于光学塔姆态(OTS)的尖锐缺陷模出现在光子晶体和AGHMM的界面处。然后将该平台应用于各种太赫兹器件,与之前的同类器件相比具有出色的特性。通过改变入射角和石墨烯化学势可以调节所有所提出器件的性能。我们设计的电光调制器具有24.75 dB的高消光比。所需的开关电压和插入损耗分别低至9.94 V和0.05 dB。由于石墨烯的各向异性,实现了在宽入射角范围内可调的偏振器。TE通和TM通偏振器的最高偏振消光比(PER)分别为42.4 dB和76.8 dB,这是有史以来报道的最高PER。通过引入更多的AGHMM缺陷,实现了品质因数高达75314的多波段可调滤波器。最后,提出了一种窄带完美吸收体,实现了99.8%的高吸收率和0.00055 THz的超窄半高宽(FWHM)。因此,所提出的结构是一个有前途的平台,可能有许多潜在的太赫兹应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/adb1/11682465/3198d05f4ed2/41598_2024_82763_Fig1_HTML.jpg

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