A High-quality Broadband Tunable Terahertz Metamaterial Absorber Based on Graphene

Xiongying Chao, Yan Xu, Feng Huang, Zhaoyang Chen
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Abstract

Abstract We design a graphene-based broadband tunable terahertz metamaterial absorber (MMA). Its structure consists of a surface graphene pattern layer, a medium layer and an underlying metal film. CST simulation results show that the absorption bandwidth for more than 90% absorption rate reaches 2.12 THz, and the range is 3.2-5.32 THz. The absorption bandwidth for more than 99% absorption rate reaches 1.38 THz, and the range is 3.45-4.83 THz, which was not achieved by most of the previous MMA. Multiple reflection interference theory is used to confirm the simulation results. In order to explore the physical mechanism of wideband absorption, we study the surface electric field distribution of the structure. We also find that the absorber has polarization insensitivity and wide-angle incidence characteristics. The absorption frequency of the absorber can be adjusted by changing the chemical potential of graphene. Therefore, the absorber has potential applications in terahertz absorption, filtering and sensing.
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基于石墨烯的高质量宽带可调谐太赫兹超材料吸收体
摘要设计了一种基于石墨烯的宽带可调谐太赫兹超材料吸收体(MMA)。其结构由表面石墨烯图案层、介质层和底层金属膜组成。CST仿真结果表明,90%吸收率以上的吸收带宽达到2.12 THz,范围为3.2 ~ 5.32 THz。99%吸收率以上的吸收带宽达到1.38 THz,范围为3.45-4.83 THz,这是之前大多数MMA无法实现的。利用多重反射干涉理论对仿真结果进行了验证。为了探索宽带吸收的物理机制,我们研究了该结构的表面电场分布。我们还发现吸收器具有偏振不敏感和广角入射特性。通过改变石墨烯的化学势,可以调节吸收剂的吸收频率。因此,该吸收剂在太赫兹吸收、滤波和传感等方面具有潜在的应用前景。
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