论文标题

通过不对称峰模型在Terahertz内部金属 - 金属超材料的吸收器行为的定量探索

Quantitative exploration of the absorber behavior of metal-insulator-metal metamaterials within terahertz via an asymmetric peak model

论文作者

Jiang, Zhigang Li Wenjing, Fu, Jianyu, Zhao, Qing

论文摘要

由于其异常吸收剂,已经开发出Terahertz(THZ)超材料用于THZ感测,检测,成像和许多其他功能。但是,异常的吸收光谱随着不同的入射角变化。因此,我们设计和制造了一个具有金属胰蛋白基金(MIM)结构超材料吸收器的焦平面阵列,以进行进一步研究。使用THZ时域光谱(THZ-TDS)测量具有20至60的入射角的吸收光谱,实验结果表明,吸收光谱随入射角变化而变化。在本研究中开发了一种用于提取吸收频率特征的基本分析不对称峰模型,以定量探索具有入射角的吸收剂行为变化。最好的结果是,使用此峰模型可以轻松找到与最高吸收的频率。实验数据与不对称峰模型的验证相一致。此外,发现了第二个将参数与入射角相关的模型,从而预测了吸收光谱变化和变化。根据次级模型推论,预测吸收光谱在特定入射角处具有山谷样吸收曲线。提出的提取方法的基本特征是可以应用于任何基于物理的MIM超材料系统。这样的模型将指导THZ超材料吸收器,传感器,成像仪和许多其他模型的设计和优化。

Terahertz (THz) metamaterials have been developed for THz sensing, detection, imaging, and many other functions due to their unusual absorbers. However, the unusual absorption spectra change with different incident angles. Thus, we designed and fabricated a focal plane array with metal-insulator-metal (MIM) structure metamaterial absorbers for further research. The absorption spectrum with incident angles from 20 to 60 was measured using THz time-domain spectroscopy (THz-TDS), and the experimental results reveal that the absorption spectrum changes with incident angle variations. A basic analytical asymmetric peak model for extracting absorption-frequency characteristics was developed in this study to quantitatively explore this variation in the absorber behavior with incident angles. The best result was that the frequency corresponding to the highest absorption can be easily found using this peak model. The experimental data was coherent with the validation of the asymmetric peak model. Moreover, a second model to quantitatively relate parameters to the incident angle was discovered, allowing for the prediction of absorption spectrum shifts and changes. The absorption spectrum was predicted to have a valley-like absorption curve at particular incident angles based on the secondary models deduction. The proposed extraction method's essential feature is that it can be applied to any physics-based MIM metamaterial system. Such a model will guide the design and optimization of THz metamaterial absorbers, sensors, imagers, and many others.

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