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Novel Metamaterials-Based Hypersensitized Liquid Sensor Integrating Omega-Shaped Resonator with Microstrip Transmission Line

机译:新型基于超材料的超敏液体传感器将欧米茄形谐振器与微带传输线集成在一起

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摘要

In this paper, a new metamaterials-based hypersensitized liquid sensor integrating omega-shaped resonator with microstrip transmission line is proposed. Microwave transmission responses to industrial energy-based liquids are investigated intensively from both numerical and experimental point of view. Simulation results concerning three-dimensional electromagnetic fields have shown that the transmission coefficient of the resonator could be monitored by the magnetic coupling between the transmission line and omega resonator. This sensor structure has been examined by methanol–water and ethanol–water mixtures. Moreover, the designed sensor is demonstrated to be very sensitive for identifying clean and waste transformer oils. A linear response characteristic of shifting the resonance frequency upon the increment of chemical contents/concentrations or changing the oil condition is observed. In addition to the high agreement of transmission coefficients (S21) between simulations and experiments, obvious resonant-frequency shift of transmission spectrum is recognized for typical pure chemical liquids (i.e., PEG 300, isopropyl alcohol, PEG1500, ammonia, and water), giving rise to identify the type and concentration of the chemical liquids. The novelty of the work is to utilize Q factor and minimum value of S21 as sensing agent in the proposed structure, which are seen to be well compatible at different frequencies ranging from 1–20 GHz. This metamaterial integrated transmission line-based sensor is considered to be promising candidate for precise detection of fluidics and for applications in the field of medicine and chemistry.
机译:本文提出了一种新的基于超材料的超敏液体传感器,该传感器将ω形谐振器与微带传输线集成在一起。从数值和实验的角度深入研究了微波对工业能源基液体的传输响应。关于三维电磁场的仿真结果表明,可以通过传输线与欧米茄谐振器之间的磁耦合来监测谐振器的传输系数。该传感器结构已通过甲醇-水和乙醇-水的混合物进行了检查。此外,事实证明,设计的传感器对于识别清洁和废弃的变压器油非常敏感。观察到随着化学含量/浓度的增加而改变共振频率或改变油的条件的线性响应特性。除了仿真和实验之间的传输系数(S21)高度一致外,对于典型的纯化学液体(即PEG 300,异丙醇,PEG1500,氨水和水),传输光谱也存在明显的共振频率偏移,从而得到以确定化学液体的类型和浓度。这项工作的新颖之处在于在拟议的结构中利用Q因子和S21的最小值作为感测剂,这在1-20 GHz的不同频率下具有很好的兼容性。这种基于超材料的集成传输线传感器被认为是精确检测流体以及在医学和化学领域中应用的有前途的候选者。

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