Chen Yi-Hao, Chen Che-Chin, Ishikawa Atsushi, Shiao Ming-Hua, Lin Yu-Shin, Hsiao Chien-Nan, Chiang Hai-Pang, Tanaka Takuo
Opt Express. 2017 Feb 6;25(3):2909-2917. doi: 10.1364/OE.25.002909.
We experimentally and theoretically study the interplay between capacitive electric and inductive magnetic couplings in infrared metamaterials consisting of densely-packed three-dimensional (3D) meta-atoms. The meta-atom is made of metal-stress-driven assembled 3D split-ring resonators to exhibit strong bi-anisotropy, where electric and magnetic resonances occur simultaneously. By varying the spatial arrangement of the arrayed meta-atoms, the mutual coupling between meta-atoms dramatically modifies their mode profiles and resultant spectral responses. The corresponding numerical simulations evidently retrieved current densities and magnetic field strengths, as well as the transmittance, to reveal the important resonant behavior in the coupled meta-atom systems. We conclude that the mutual electric coupling between the neighboring meta-atoms plays a crucial role to the scattering behaviors of the bi-anisotropic metamaterials.
我们通过实验和理论研究了由密集排列的三维(3D)元原子组成的红外超材料中电容性电耦合和电感磁性耦合之间的相互作用。元原子由金属应力驱动组装的3D裂环谐振器制成,表现出很强的双各向异性,其中电共振和磁共振同时发生。通过改变排列的元原子的空间排列,元原子之间的相互耦合极大地改变了它们的模式轮廓和由此产生的光谱响应。相应的数值模拟清楚地获取了电流密度和磁场强度以及透射率,以揭示耦合元原子系统中的重要共振行为。我们得出结论,相邻元原子之间的相互电耦合对双各向异性超材料的散射行为起着至关重要的作用。