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A Novel Terahertz Integrated Sensor Based on Metamaterial and Embedded Microfluidic Channels
THz metamaterial microfluidic sensors, which can be utilized for the detection of liquid specimen, have attracted much attention in biosensing applications. In this paper, a novel microfluidic channel embedded THz metamaterial sensor is proposed and characterized. Unlike the reported THz metamateria...
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creator | Li, Xue Deng, Tao Jiao, Hengyuan Zhu, Mingqiang Sun, Jingye |
description | THz metamaterial microfluidic sensors, which can be utilized for the detection of liquid specimen, have attracted much attention in biosensing applications. In this paper, a novel microfluidic channel embedded THz metamaterial sensor is proposed and characterized. Unlike the reported THz metamaterial microfluidic sensors, our concept combines the microfluidic channel with substrate, by designing micro-channels in PDMS substrate. It could be easily fabricated by standard photolithography technique. We also compare and contrast the transmission and reflection performance of different SRR metamaterials. The simulation results show that the two-gap SRR pattern with 120° spacing angle exhibits highest sensitivity, FOM and Q-factor. |
doi_str_mv | 10.1109/IRMMW-THz50927.2022.9895669 |
format | conference_proceeding |
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In this paper, a novel microfluidic channel embedded THz metamaterial sensor is proposed and characterized. Unlike the reported THz metamaterial microfluidic sensors, our concept combines the microfluidic channel with substrate, by designing micro-channels in PDMS substrate. It could be easily fabricated by standard photolithography technique. We also compare and contrast the transmission and reflection performance of different SRR metamaterials. The simulation results show that the two-gap SRR pattern with 120° spacing angle exhibits highest sensitivity, FOM and Q-factor.</abstract><pub>IEEE</pub><doi>10.1109/IRMMW-THz50927.2022.9895669</doi><tpages>2</tpages></addata></record> |
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identifier | EISSN: 2162-2035 |
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language | eng |
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source | IEEE Xplore All Conference Series |
subjects | Biosensors Metamaterials Q-factor Reflection Sensitivity Sensor phenomena and characterization Simulation |
title | A Novel Terahertz Integrated Sensor Based on Metamaterial and Embedded Microfluidic Channels |
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