用于太赫兹应用的亚波长布拉格反射器的实现

Vikas Singal, S. Smaili, Y. Massoud
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引用次数: 0

摘要

近年来,人们在通信、医学和生物学领域研究了太赫兹(THz)部分电磁频谱的使用。在应用中对太赫兹波性能的评估需要基于太赫兹的支持性器件,如发射器、探测器和滤波器。太赫兹器件与先进硅基器件的有效集成受到其典型衍射极限(毫米)的限制。本文提出了一种以锑化铟(InSb)、二氧化硅(SiO2)和多孔二氧化硅(pore -SiO2)为材料的亚波长表面等离子体激元(SPPs)型布拉格反射器。基于SPPs的太赫兹波传播使太赫兹器件的纳米级实现成为可能。所提出的等离子体布拉格反射器利用了核心层中介电材料的周期性变化,而包层中使用了InSb。基于有限元法的仿真验证了所提出的亚波长布拉格反射器的工作特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Implementation of a subwavelength Bragg reflector for Terahertz applications
In recent years, the usage of the Terahertz (THz) portion of the electromagnetic spectrum has been investigated in the field of communications, medicine and biology. The evaluation of the THz wave performance in the applications requires supportive THz based devices such as emitter, detectors and filters. The efficient integration of the THz devices with the state of the art silicon based devices is limited by its typical diffraction limit (millimeters). In this abstract, a subwavelength Surface Plasmon Polaritons (SPPs) based Bragg reflector is using Indium antimonide (InSb), Silicon-dioxide (SiO2) and Porous-SiO2, is proposed. The SPPs based wave propagation at THz allows the nanoscale realization of the THz based devices. The proposed plasmonic Bragg reflector utilizes the periodic changes of the dielectric material in the core layer, while InSb is used in the cladding layer. Finite Element Method (FEM) based simulations are used to demonstrate the working of the proposed subwavelength Bragg reflector.
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