Tunable Terahertz filter based on graphene photonic crystals with defective layers

Songchao Shen, Ahmed M F Hameed, Feifei Qin, Ibrar, Ang Bian, Jun Dai
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Abstract

In this paper, we design a high-precision tunable terahertz filter by using transfer matrix method. The filter structure mainly consists of graphene embedded photonic crystals (GPCs). The front part of the GPCs contain artificial synthetic material and air layer, the back part of the GPCs is composed by and periodic stack of isotropic dielectric slabs (MgF2) embedded with graphene sheets, where air defect layer is located in the middle of the GPC as a central layer. Our simulation reveals that graphene layer and air defective layer strongly affect the filter performance. Additionally, the influence of incidence angle of terahertz wave, thickness of air layer, the unit number of front periodic structure and chemical potential of the graphene sheets can also modulate the function of the filter. And the filter has strong stability when the temperature changes from 150K to 350K.The results indicate that single channel, dual and multiple channels filter in a narrow frequency can be obtained by optimizing the structure parameter.
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基于带缺陷层石墨烯光子晶体的可调谐太赫兹滤波器
本文采用传递矩阵法设计了一种高精度可调谐太赫兹滤波器。滤波器结构主要由石墨烯嵌入式光子晶体(GPC)组成。GPCs 的前部包含人工合成材料和空气层,后部由嵌入石墨烯片的各向同性介质板(MgF2)周期性堆叠组成,其中空气缺陷层作为中心层位于 GPC 的中间。模拟结果表明,石墨烯层和空气缺陷层对滤波器性能有很大影响。此外,太赫兹波的入射角、空气层的厚度、前周期结构的单位数和石墨烯片的化学势也会影响滤波器的功能。结果表明,通过优化结构参数,可以获得窄频率的单通道、双通道和多通道滤波器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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