Hokmabadi Mohammad Parvinnezhad, Wilbert David S, Kung Patrick, Kim Seongsin M
Electrical and Computer Engineering Department, University of Alabama, Tuscaloosa, AL 35487, USA.
Opt Express. 2013 Jul 15;21(14):16455-65. doi: 10.1364/OE.21.016455.
Metamaterial terahertz absorbers composed of a frequency selective layer followed by a spacer and a metallic backplane have recently attracted great attention as a device to detect terahertz radiation. In this work, we present a quasistatic dynamic circuit model that can decently describe operational principle of metamaterial terahertz absorbers based on interference theory of reflected waves. The model comprises two series LC resonance components, one for resonance in frequency selective surface (FSS) and another for resonance inside the spacer. Absorption frequency is dominantly determined by the LC of FSS while the spacer LC changes slightly the magnitude and frequency of absorption. This model fits perfectly for both simulated and experimental data. By using this model, we study our designed absorber and we analyze the effect of changing in spacer thickness and metal conductivity on absorption spectrum.
由频率选择层、间隔层和金属背板组成的超材料太赫兹吸收器,作为一种探测太赫兹辐射的器件,近来备受关注。在这项工作中,我们提出了一种准静态动态电路模型,该模型能很好地基于反射波干涉理论描述超材料太赫兹吸收器的工作原理。该模型包含两个串联的LC谐振元件,一个用于频率选择表面(FSS)的谐振,另一个用于间隔层内部的谐振。吸收频率主要由FSS的LC决定,而间隔层的LC会略微改变吸收的幅度和频率。该模型与模拟数据和实验数据都完美契合。通过使用这个模型,我们研究了我们设计的吸收器,并分析了间隔层厚度和金属电导率的变化对吸收光谱的影响。