太赫兹辐射
材料科学
诺共振
光电子学
超材料
共振(粒子物理)
折射率
电导率
极化(电化学)
太赫兹光谱与技术
光学
等离子体子
物理
化学
物理化学
粒子物理学
量子力学
作者
Xin Yan,Chengcheng Huang,Zijing Zhang,Fu Qiu,Wenjia Liu,Ruochen Xu,Ziqun Wang,Zhenhua Li,Xiaofei Hu,Chao Wang,Yonggang Zhang,Haiyun Yao,Liang Liu,Jianquan Yao
摘要
In this paper, a terahertz metamaterial structure with multiple physical features such as EIT-like resonance, Fano resonance, and terahertz wave absorption, is implemented. The device consists of a metal structure and a GaAs layer. The conductivity of GaAs can be adjusted by optical pump. When the conductivity of GaAs is 10 S/m, with the TE polarization wave incenting, the Fano resonance formed, and when the TM polarization wave was incenting, the EIT-like resonance formed. Modulation of the resonance can be achieved by adjusting the conductivity of GaAs, and a maximum modulation depth of 96.5% is obtained. When the conductivity of GaAs is 2 × 10 5 S/m, a double narrow-band absorption is obtained with TM polarization wave exciting. The maximum sensitivity reaches 513 GHz/RIU and the maximum FOM value reaches 39.5, which indicates that the device has excellent performance in refractive index sensing. The device also has a wide range of applications in terahertz sensors, slow-light devices, and terahertz modulators.
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