Yan Rusen, Sensale-Rodriguez Berardi, Liu Lei, Jena Debdeep, Xing Huili Grace
Department of Electrical Engineering, University of Notre Dame, Notre Dame, IN 46556, USA.
Opt Express. 2012 Dec 17;20(27):28664-71. doi: 10.1364/OE.20.028664.
Switchable metamaterials offer unique solutions for efficiently manipulating electromagnetic waves, particularly for terahertz waves, which has been difficult since naturally occurring materials rarely respond to terahertz frequencies controllably. However, few terahertz modulators demonstrated to date exhibit simultaneously low attenuation and high modulation depth. In this letter we propose a new class of electrically-tunable terahertz metamaterial modulators employing metallic frequency-selective-surfaces (FSS) in conjunction with capacitively-tunable layers of electrons, promising near 100% modulation depth and < 15% attenuation. The fundamental departure in our design from the prior art is tuning enabled by self-gated electron layers that is independent from the metallic FSS. Our proposal is applicable to all possible electrically tunable elements including graphene, Si, MoS(2), oxides etc, thus opening up myriad opportunities for realizing high performance switchable metamaterials over an ultra-wide terahertz frequency range.
可切换超材料为高效操控电磁波提供了独特的解决方案,特别是对于太赫兹波而言,由于天然材料很少能可控地响应太赫兹频率,这一直是个难题。然而,迄今为止所展示的太赫兹调制器中,很少有能同时具备低衰减和高调制深度的。在本信函中,我们提出了一类新型的电可调太赫兹超材料调制器,它采用金属频率选择表面(FSS)与电容可调电子层相结合,有望实现近100%的调制深度和<15%的衰减。我们的设计与现有技术的根本区别在于,通过自门控电子层实现调谐,该电子层独立于金属FSS。我们的提议适用于所有可能的电可调元件,包括石墨烯、硅、二硫化钼、氧化物等,从而为在超宽太赫兹频率范围内实现高性能可切换超材料开辟了无数机会。