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Metamaterial absorber integrated microfluidic terahertz sensors

机译:超材料吸收器集成微流体太赫兹传感器

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摘要

Spatial overlap between the electromagnetic fields and the analytes is a key factor for strong light-matter interaction leading to high sensitivity for label-free refractive index sensing. Usually, the overlap and therefore the sensitivity are limited by either the localized near field of plasmonic antennas or the decayed resonant mode outside the cavity applied to monitor the refractive index variation. In this paper, by constructing a metal microstructure array-dielectric-metal (MDM) structure, a novel metamaterial absorber integrated microfluidic (MAIM) sensor is proposed and demonstrated in terahertz (THz) range, where the dielectric layer of the MDM structure is hollow and acts as the microfluidic channel. Tuning the electromagnetic parameters of metamaterial absorber, greatly confined electromagnetic fields can be obtained in the channel resulting in significantly enhanced interaction between the analytes and the THz wave. A high sensitivity of 3.5 THz/RIU is predicted. The experimental results of devices working around 1 THz agree with the simulation ones well. The proposed idea to integrate metamaterial and microfluid with a large light-matter interaction can be extended to other frequency regions and has promising applications in matter detection and biosensing.
机译:电磁场与分析物之间的空间重叠是强光-物质相互作用的关键因素,从而导致无标记折射率传感的高灵敏度。通常,重叠和灵敏度因此受到等离激元天线的局部近场或应用于监测折射率变化的空腔外部衰减谐振模式的限制。本文通过构造金属微结构阵列-介电金属(MDM)结构,提出了一种新型的超材料吸收体集成微流体(MAIM)传感器,并在太赫兹(THz)范围内进行了演示,其中MDM结构的介电层是空心的并充当微流体通道。通过调整超材料吸收器的电磁参数,可以在通道中获得非常狭窄的电磁场,从而大大提高了分析物与太赫兹波之间的相互作用。预计将达到3.5 THz / RIU的高灵敏度。工作在1 THz左右的设备的实验结果与仿真结果非常吻合。所提出的将超材料和微流体与大的光-物质相互作用进行整合的想法可以扩展到其他频率区域,并且在物质检测和生物传感中具有广阔的应用前景。

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