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基于等离子体杂交的用于TE和TM模式的宽入射角不敏感偏振无关太赫兹超材料吸收器

Wide Angle of Incidence-Insensitive Polarization-Independent THz Metamaterial Absorber for Both TE and TM Mode Based on Plasmon Hybridizations.

作者信息

Huang Xiu Tao, Lu Cong Hui, Rong Can Can, Wang Sheng Ming, Liu Ming Hai

机构信息

State Key Laboratory of Advanced Electromagnetic Engineering and Technology, Huazhong University of Science and Technology, Wuhan 430074, China.

School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China.

出版信息

Materials (Basel). 2018 Apr 25;11(5):671. doi: 10.3390/ma11050671.

Abstract

An ultra-wide-angle THz metamaterial absorber (MA) utilizing sixteen-circular-sector (SCR) resonator for both transverse electric (TE) and transverse magnetic (TM) mode is designed and investigated numerically. At normal incidence, the absorptivity of the proposed MA is higher than 93.7% at 9.05 THz for different polarization angles, due to the rotational symmetry structure of the unit cell. Under oblique incidence, the absorptivity can still exceed 90%, even when the incident angle is up to 70° for both TE and TM mode. Especially, the frequency variation in TE mode is less than 0.25% for different incident angles from 0° to 70°. The electric field (E) distributions are used to explain the absorption mechanism. Numerical simulation results show that the high absorption with wide-angle independence stems from fundamental dipole resonance and gap surface plasmons. The broadband deep-infrared MA is also obtained by stacking three metal-dielectric layers. The designed MA has great potential in bolometric pixel elements, biomedical sensors, THz imaging, and solar cells.

摘要

设计并数值研究了一种利用十六扇形(SCR)谐振器的超广角太赫兹超材料吸收器(MA),用于横电(TE)和横磁(TM)模式。在正入射时,由于单元胞的旋转对称结构,所提出的MA在9.05太赫兹下对于不同偏振角的吸收率高于93.7%。在斜入射下,即使TE和TM模式的入射角高达70°,吸收率仍可超过90%。特别是,对于从0°到70°的不同入射角,TE模式下的频率变化小于0.25%。利用电场(E)分布来解释吸收机制。数值模拟结果表明,具有广角独立性的高吸收率源于基本偶极子共振和间隙表面等离子体激元。通过堆叠三个金属 - 电介质层也获得了宽带深红外MA。所设计的MA在测辐射热像素元件、生物医学传感器、太赫兹成像和太阳能电池方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4c3/5978048/06600706daba/materials-11-00671-g001.jpg

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