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太赫兹频段具有成本效益的靶心孔径式多频段超材料吸波器:设计、数值分析与物理解释

Cost-Effective Bull's Eye Aperture-Style Multi-Band Metamaterial Absorber at Sub-THz Band: Design, Numerical Analysis, and Physical Interpretation.

作者信息

Vafapour Zohreh

机构信息

Department of Electrical and Computer Engineering, Queen's University, Kingston, ON K7L 3N6, Canada.

Department of Physics, School of Natural Sciences, University of California Merced, Merced, CA 95343, USA.

出版信息

Sensors (Basel). 2022 Apr 9;22(8):2892. doi: 10.3390/s22082892.

Abstract

Theoretical and numerical studies were conducted on plasmonic interactions at a polarization-independent semiconductor-dielectric-semiconductor (SDS) sandwiched layer design and a brief review of the basic theory model was presented. The potential of bull's eye aperture (BEA) structures as device elements has been well recognized in multi-band structures. In addition, the sub-terahertz (THz) band (below 1 THz frequency regime) is utilized in communications and sensing applications, which are in high demand in modern technology. Therefore, we produced theoretical and numerical studies for a THz-absorbing-metasurface BEA-style design, with N-beam absorption peaks at a sub-THz band, using economical and commercially accessible materials, which have a low cost and an easy fabrication process. Furthermore, we applied the Drude model for the dielectric function of semiconductors due to its ability to describe both free-electron and bound systems simultaneously. Associated with metasurface research and applications, it is essential to facilitate metasurface designs to be of the utmost flexible properties with low cost. Through the aid of electromagnetic (EM) coupling using multiple semiconductor ring resonators (RRs), we could tune the number of absorption peaks between the 0.1 and 1.0 THz frequency regime. By increasing the number of semiconductor rings without altering all other parameters, we found a translation trend of the absorption frequencies. In addition, we validated our spectral response results using EM field distributions and surface currents. Here, we mainly discuss the source of the N-band THz absorber and the underlying physics of the multi-beam absorber designed structures. The proposed microstructure has ultra-high potentials to utilize in high-power THz sources and optical biomedical sensing and detection applications based on opto-electronics technology based on having multi-band absorption responses.

摘要

针对偏振无关的半导体 - 电介质 - 半导体(SDS)夹层结构中的等离子体相互作用进行了理论和数值研究,并对基本理论模型进行了简要回顾。在多波段结构中,靶心孔径(BEA)结构作为器件元件的潜力已得到充分认可。此外,亚太赫兹(THz)频段(频率低于1 THz)被用于通信和传感应用,这些在现代技术中需求很高。因此,我们使用经济且商业上可获取的材料,对具有亚太赫兹频段N束吸收峰的太赫兹吸收超表面BEA样式设计进行了理论和数值研究,这些材料成本低且制造工艺简单。此外,由于其能够同时描述自由电子和束缚系统,我们将德鲁德模型应用于半导体的介电函数。与超表面的研究和应用相关,使超表面设计具有最大的灵活性且成本低至关重要。借助使用多个半导体环形谐振器(RR)的电磁(EM)耦合,我们可以在0.1至1.0 THz频率范围内调整吸收峰的数量。通过在不改变所有其他参数的情况下增加半导体环的数量,我们发现了吸收频率的平移趋势。此外,我们使用电磁场分布和表面电流验证了我们的光谱响应结果。在此,我们主要讨论N波段太赫兹吸收器的来源以及所设计的多束吸收器结构的潜在物理原理。基于具有多波段吸收响应,所提出的微结构在基于光电子技术的高功率太赫兹源以及光学生物医学传感和检测应用中具有超高的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a96e/9029594/7c1e56c8bd88/sensors-22-02892-g001.jpg

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