Mou Nanli, Sun Shulin, Dong Hongxing, Dong Shaohua, He Qiong, Zhou Lei, Zhang Long
Opt Express. 2018 Apr 30;26(9):11728-11736. doi: 10.1364/OE.26.011728.
Electromagnetic (EM) wave absorption plays a vital role in photonics. While metasurfaces are proposed to absorb EM waves efficiently, most of them exhibit limited bandwidth and fixed functionalities. Here, we propose a broadband and tunable terahertz (THz) absorber based on a graphene-based metasurface, which is constructed by a single layer of closely patterned graphene concentric double rings and a metallic mirror separated by an ultrathin SiO layer. Plasmonic hybridization between two graphene rings significantly enlarges the absorption bandwidth, which can be further tuned by gating the graphene. Moreover, the specific design also makes our device insensitive to the incident angle and polarization state of impinging EM waves. Our results may inspire certain wave-modulation-related applications, such as THz imaging, smart absorber, tunable sensor, etc.
电磁波吸收在光子学中起着至关重要的作用。虽然提出了超表面来有效吸收电磁波,但其中大多数具有有限的带宽和固定的功能。在此,我们提出了一种基于石墨烯超表面的宽带可调太赫兹(THz)吸收器,它由单层紧密排列的石墨烯同心双环和由超薄SiO层隔开的金属镜构成。两个石墨烯环之间的等离子体杂交显著拓宽了吸收带宽,通过对石墨烯施加栅极可进一步调节该带宽。此外,这种特殊设计还使我们的器件对入射电磁波的入射角和偏振态不敏感。我们的结果可能会激发某些与波调制相关的应用,如太赫兹成像、智能吸收器、可调传感器等。