• INFRARED
  • Vol. 46, Issue 3, 47 (2025)
Lu-bin WANG1, Hui-rui ZHANG1, Jiang-tao WANG2, Jing-zhi WU1,3, and Yan-hong WANG1,3,*
Author Affiliations
  • 1Institute of Information and Communication Engineering, North University of China, Taiyuan 030051, China
  • 2Henan Costar Group Co., Ltd., Nanyang 473000, China
  • 3Shanxi Innovation Center for Intelligent Microwave & Photoelectrics, Taiyuan 030051, China
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    DOI: 10.3969/j.issn.1672-8785.2025.03.007 Cite this Article
    WANG Lu-bin, ZHANG Hui-rui, WANG Jiang-tao, WU Jing-zhi, WANG Yan-hong. Performance Study of Butterfly-Shaped Terahertz Waveguide in Trace Solution Concentration Detection[J]. INFRARED, 2025, 46(3): 47 Copy Citation Text show less

    Abstract

    A butterfly-shaped terahertz waveguide sensor based on the plasmon effect is proposed. The resonance characteristics of the terahertz waveguide at a specific frequency are used to detect changes in solution concentration. By analyzing the S11 reflection parameters of the terahertz waveguide sensor, it is observed that at a frequency of 53.28 GHz, a resonance dip with a Q-value of 82.28 appears in the waveguide structure. When different concentrations of analytes are set in the butterfly-shaped region of the waveguide, dual resonance dips are generated and frequency shifts occur; the resonance frequency exhibits a blue shift with the increase of solution concentration, indicating that the dielectric constant of the solution affects the electromagnetic field distribution in the waveguide. The simulation results verify the frequency shift law of the S11 reflection parameters of lactose solutions at different concentrations, and the sensitivity can reach 0.075 GHz/(g/L). Compared with traditional sensor detection methods, this sensor can provide higher sensitivity, accurately reflecting small changes in the concentration of trace solutions.
    WANG Lu-bin, ZHANG Hui-rui, WANG Jiang-tao, WU Jing-zhi, WANG Yan-hong. Performance Study of Butterfly-Shaped Terahertz Waveguide in Trace Solution Concentration Detection[J]. INFRARED, 2025, 46(3): 47
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