Hu Dan, Meng Tianhua, Wang Hongyan, Ma Yongkang
Appl Opt. 2020 Dec 10;59(35):11053-11058. doi: 10.1364/AO.409738.
Graphene as a new two-dimensional material can be utilized to design tunable optical devices owing to its exceptional physical properties, such as high mobility and tunable conductivity. In this paper, we present the design and analysis of a tunable broadband terahertz absorber based on periodic graphene ring arrays. Due to plasmon hybridization modes excited in the graphene ring, the proposed structure achieves a broad absorption bandwidth with more than 90% absorption in the frequency range of 0.88-2.10 THz under normal incidence, and its relative absorption bandwidth is about 81.88%. Meanwhile, it exhibits polarization-insensitive behavior and maintains high absorption over 80% when the incident angle is up to 45° for both TE and TM polarizations. Additionally, the peak absorption rate of the absorber can be tuned from 21% to nearly 100% by increasing the graphene's chemical potential from 0 to 0.9 eV. Such a design can have some potential applications in various terahertz devices, such as modulators, detectors, and spatial filters.
石墨烯作为一种新型二维材料,因其具有诸如高迁移率和可调电导率等优异物理特性,可用于设计可调谐光学器件。在本文中,我们展示了一种基于周期性石墨烯环阵列的可调谐宽带太赫兹吸收器的设计与分析。由于石墨烯环中激发的等离子体杂化模式,所提出的结构在垂直入射时,在0.88 - 2.10太赫兹频率范围内实现了超过90%吸收率的宽吸收带宽,其相对吸收带宽约为81.88%。同时,它表现出偏振不敏感特性,并且当入射角高达45°时,对于TE和TM两种偏振态,吸收率均保持在80%以上。此外,通过将石墨烯的化学势从0增加到0.9电子伏特,吸收器的峰值吸收率可从21%调谐至近100%。这样的设计在各种太赫兹器件,如调制器、探测器和空间滤波器等方面可能具有一些潜在应用。