Girard Martin, Skorobogatiy Maksim
École Polytechnique de Montréal, Department of Engineering Physics, CP 6079, Centre-Ville Montreal, QC H3C 3A7, Canada.
Opt Express. 2013 Jul 15;21(14):17195-211. doi: 10.1364/OE.21.017195.
Transmission through a subwavelength terahertz fiber, which is positioned in parallel to a frequency selective surface, is studied using several finite element tools. Both the band diagram technique and the port-based scattering matrix technique are used to explain the nature of various resonances in the fiber transmission spectrum. First, we observe that spectral positions of most of the transmission peaks in the port-based simulation can be related to the positions of Van Hove singularities in the band diagram of a corresponding infinite periodic system. Moreover, spectral shape of most of the features in the fiber transmission spectrum can be explained by superposition of several Fano-type resonances. We also show that center frequencies and bandwidths of these resonances and, as a consequence, spectral shape of the resulting transmission features can be tuned by varying the fiber-metamaterial separation.
利用几种有限元工具研究了通过与频率选择表面平行放置的亚波长太赫兹光纤的传输。带图技术和基于端口的散射矩阵技术都被用来解释光纤传输谱中各种共振的性质。首先,我们观察到基于端口的模拟中大多数传输峰的光谱位置可以与相应无限周期系统带图中的范霍夫奇点位置相关。此外,光纤传输谱中大多数特征的光谱形状可以通过几种法诺型共振的叠加来解释。我们还表明,这些共振的中心频率和带宽,以及由此产生的传输特征的光谱形状,可以通过改变光纤与超材料的间距来调节。