叠层石墨烯结构可调谐太赫兹石墨烯-金属混合天线的吸收增强

G. Witjaksono, Z. Ullah, Illani Nawi, N. Tansu, Muhamad Irfan Khattak, M. Junaid
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引用次数: 0

摘要

本文提出了栅极可调谐石墨烯-金属混合纳米天线,并进行了详细的数值模拟,以评估多层石墨烯纳米天线在太赫兹频率,特别是远红外频率下的吸收。所研究的石墨烯纳米天线由多层石墨烯堆叠组成,放置在金六边形辐射体上方,以有效地耦合活化的石墨烯等离子体。石墨烯层和金六边形之间的高效耦合等离子体增加了天线的吸收。此外,通过改变石墨烯片的费米能量,分析了吸收与多层石墨烯之间的关系,从而在宽频率范围内提供宽带吸收的可调性。所研究的纳米天线谐振频率为30.5 THz,带宽为0.6 THz,而三层石墨烯纳米天线的吸收效果更好,带宽为2.5 THz,几乎达到100%。利用FDTD求解器在CST studio中对石墨烯-金属天线进行了仿真。设计的天线在光子学领域有各种用途,即太赫兹成像,传感和光谱学应用。
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Absorption Enhancement of Tunable Terahertz Hybrid Graphene-Metal Antenna with Stacked Graphene configuration
Gate tunable graphene-metal hybrid nanoantenna is proposed here with detailed numerical simulations carried out to evaluate the absorption of multi-layer graphene nanoantenna at terahertz frequencies, specifically at far-infrared. The investigated graphene nanoantenna composes of multi-layer graphene stack formation, which is placed above the gold hexagon radiator to efficiently couple activated graphene plasmons. The efficient coupled plasmons between graphene layers and gold hexagon increase the absorption of the antenna. Furthermore, the relationship between the absorption and multi-layer graphene is analysed by changing the Fermi energy of the graphene sheet, thus providing tunability of broadband absorption at a wide range of frequencies. The investigated nanoantenna has a resonant frequency at 30.5 THz with a bandwidth of 0.6 THz, while the trilayer graphene nanoantenna results in better absorption almost reaching 100% with a bandwidth of 2.5 THz. The simulation of the graphene-metal antenna is performed in CST studio by using an FDTD solver. The designed antenna has various utilizations in the field of photonics i.e. terahertz imaging, sensing, and spectroscopy applications.
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