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Dynamic Absorption Enhancement and Equivalent Resonant Circuit Modeling of Tunable Graphene-Metal Hybrid Antenna

机译:可调谐石墨烯-金属混合天线的动态吸收增强和等效谐振电路建模

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摘要

Plasmonic antennas are attractive optical components of the optoelectronic devices, operating in the far-infrared regime for sensing and imaging applications. However, low optical absorption hinders its potential applications, and their performance is limited due to fixed resonance frequency. In this article, a novel gate tunable graphene-metal hybrid plasmonic antenna with stacking configuration is proposed and investigated to achieve tunable performance over a broad range of frequencies with enhanced absorption characteristics. The hybrid graphene-metal antenna geometry is built up with a hexagon radiator that is supported by the Al O insulator layer and graphene reflector. This stacked structure is deposited in the high resistive Si wafer substrate, and the hexagon radiator itself is a sandwich structure, which is composed of gold hexagon structure and two multilayer graphene stacks. The proposed antenna characteristics i.e., tunability of frequency, the efficiency corresponding to characteristics modes, and the tuning of absorption spectra, are evaluated by full-wave numerical simulations. Besides, the unity absorption peak that was realized through the proposed geometry is sensitive to the incident angle of TM-polarized incidence waves, which can flexibly shift the maxima of the absorption peak from 30 THz to 34 THz. Finally, an equivalent resonant circuit model for the investigated antenna based on the simulations results is designed to validate the antenna performance. Parametric analysis of the proposed antenna is carried out through altering the geometric parameters and graphene parameters in the Computer Simulation Technology (CST) studio. This clearly shows that the proposed antenna has a resonance frequency at 33 THz when the graphene sheet Fermi energy is increased to 0.3 eV by applying electrostatic gate voltage. The good agreement of the simulation and equivalent circuit model results makes the graphene-metal antenna suitable for the realization of far-infrared sensing and imaging device containing graphene antenna with enhanced performance.
机译:等离子体天线是光电子设备中引人注目的光学组件,它们在远红外范围内运行,用于传感和成像应用。然而,低的光吸收阻碍了其潜在的应用,并且由于固定的谐振频率,其性能受到限制。在本文中,提出并研究了一种新颖的具有堆叠结构的栅极可调谐石墨烯-金属混合等离子体天线,以实现在宽频率范围内具有增强的吸收特性的可调谐性能。石墨烯-金属混合天线的几何结构由六边形辐射体构成,并由Al O绝缘体层和石墨烯反射器支撑。该堆叠结构沉积在高电阻硅晶圆衬底中,六边形辐射体本身是一种三明治结构,由金六边形结构和两个多层石墨烯堆叠组成。通过全波数值模拟来评估所提出的天线特性,即频率的可调谐性,与特性模式相对应的效率以及吸收频谱的调谐。此外,通过提出的几何形状实现的单位吸收峰对TM偏振入射波的入射角敏感,可以将吸收峰的最大值从30 THz灵活地移动到34 THz。最后,基于仿真结果,设计了用于研究天线的等效谐振电路模型,以验证天线性能。通过在计算机仿真技术(CST)工作室中更改几何参数和石墨烯参数,可以对建议的天线进行参数分析。这清楚地表明,当通过施加静电栅极电压将石墨烯片费米能量增加至0.3 eV时,建议的天线在33 THz处具有谐振频率。仿真结果与等效电路模型结果吻合良好,使得石墨烯-金属天线适用于实现高性能的含石墨烯天线的远红外传感成像设备。

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