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Ultrasensitive dual-band terahertz sensing with metamaterial perfect absorber

机译:带有超材料完美吸收体的超灵敏双频段太赫兹感测

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Due to the weak energy storage characteristics of the monolayer metamaterial, how to increase the sub-wavelength scale interaction between biological or chemical samples and terahertz wave on sufficient sensitivity premise becomes the key scientific problems in the study of terahertz sensing technology. In this paper, an ultrasensitive dual-band spectral terahertz sensor with polarization insensitive metamaterial perfect absorber (MPA) is demonstrated. A double-ring shaped metal microstructure integrated with microfluidic channel is applied in the polarization sensitive terahertz sensor. The numerical results show that the normalized sensitivity of refractive index unit 0.638/RIU with mode A and 0.582/RIU with mode B are obtained at 1.04THz and 0.506THz, respectively. The absorptive sensing mechanism is elucidated by the electric field and surface current distributions. Compared to other metamaterials (MMs) based terahertz sensors, the proposed MPA sensor with significantly confined field, enhanced sensitivity and polarization insensitivity is much more suitable for label-free terahertz probing of fluidic matter detection.
机译:由于单层超材料的储能特性较弱,如何在足够的灵敏度前提下增加生化样品与太赫兹波之间的亚波长尺度相互作用成为太赫兹传感技术研究的关键科学问题。本文介绍了一种具有极化不敏感超材料完美吸收体(MPA)的超灵敏双波段太赫兹传感器。集成了微流体通道的双环金属微结构被应用在偏振敏感太赫兹传感器中。数值结果表明,分别在1.04THz和0.506THz下获得了模式A的折射率单位0.638 / RIU和模式B的0.582 / RIU的归一化灵敏度。电场和表面电流的分布阐明了吸收传感机制。与其他基于超材料(MMs)的太赫兹传感器相比,拟议的MPA传感器具有显着受限的场,增强的灵敏度和极化不敏感性,非常适合于无标记太赫兹流体物质探测。

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