Gao Run-Mei, Xu Zong-Cheng, Ding Chun-Feng, Yao Jian-Quan
Appl Opt. 2016 Mar 10;55(8):1929-33. doi: 10.1364/AO.55.001929.
In this paper, we design a tunable strength multiband absorber consisting of a graphene metamaterial structure and a thick dielectric interlayer deposited on a metal ground plane. We investigate the tunable conductivity properties of the graphene metamaterial and demonstrate multiband absorbers with three absorption bands using a polyimide interlayer in the 0-2.25 THz range by numerical simulation. The results show that the mix absorptivity reached 99.8% at 1.99 THz, and the absorptive strength can be tuned with the modulation depth up to 84.2%. We present a theoretical interpretation based on a standing wave field, which shows that the field energy is localized inside the thicker spacer and then dissipated, effectively trapping the light in the metamaterial absorbers with negligible near-field interactions. The standing wave field theory developed here explains all the features of the multiband metamaterial absorbers and provides a profound understanding of the underlying physics.
在本文中,我们设计了一种可调谐强度的多频段吸收器,它由石墨烯超材料结构和沉积在金属接地平面上的厚介质中间层组成。我们研究了石墨烯超材料的可调谐导电特性,并通过数值模拟展示了在0 - 2.25太赫兹范围内使用聚酰亚胺中间层的具有三个吸收频段的多频段吸收器。结果表明,在1.99太赫兹时混合吸收率达到99.8%,并且吸收强度可通过调制深度进行调节,调节幅度高达84.2%。我们基于驻波场提出了一种理论解释,该解释表明场能局域在较厚的间隔层内部然后耗散,有效地将光捕获在超材料吸收器中,且近场相互作用可忽略不计。这里发展的驻波场理论解释了多频段超材料吸收器的所有特性,并对其 underlying 物理原理提供了深刻理解。 (注:原文中“underlying”未翻译完整,推测可能是“潜在的”之类意思,因信息不完整保留原文)