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A Novel Differential Microwave Sensor Based on Reflective-Mode Phase Variation of Stepped-Impedance Transmission Lines for Extracting Permittivity of Dielectric Materials

Wen‐Jing Wu, Wen‐Sheng Zhao, Wensong Wang

2023IEEE Sensors Journal16 citationsDOI

Abstract

A differential microwave sensor based on stepped-impedance transmission lines for retrieving permittivity of dielectric materials is proposed in this manuscript. The proposed differential microwave sensor consists of the modified passive sensor and active circuits. The modified passive sensor is composed of two identical short-ended stepped-impedance transmission lines, and the high and low impedance microstrip lines constitute the stepped-impedance transmission line. Through theoretical analysis and experimental validation, the optimum geometrical dimensions for the passive sensor are given. The optimum structure can realize the maximum phase-variation of reflection coefficient for modified passive sensor. The modified stepped-impedance transmission line has the maximum phase-variation of reflection coefficient with permittivity changing by one unit, the stepped-impedance transmission line itself is a good passive sensor in characterizing dielectric materials. In experiment, one high impedance line is regarded as sensing area, another is regarded as reference, and this differential configuration can inhibit the interferences of external environment and improve the detection sensitivity. The active circuits consist of RF oscillator, phase shifter, mixer, lowpass filter (LPF), and in-phase proportional amplifier. In RF oscillator, the modified stepped-impedance transmission line is used as load network, and pseudomorphic high electron mobility transistor (PHEMT) ATF34143 is adopted to design the RF oscillator. The design of RF oscillator is a preparation for fabricating microwave sensing system. In the microwave sensing system, the oscillation frequency will be changed when dielectric materials with different permittivity are loaded, which further leads to the variation of output DC voltage. The mathematical relationship between permittivity and output DC voltage can be establish to characterize unknown materials. In measurement, the average sensitivity is about 169.6 <italic xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">mV</i> /Δε′ <sub xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">r</sub> , which is several hundred times higher than other sensor. The maximum error is about 1.745%, which is reduced by about 34.39% than another one. The proposed differential microwave sensing system can not only decline some interferences of external environment, but also get rid of the use of vector network analyzer (VNA), and lower the cost. The proposed differential sensing system is a good candidate in the field of characterizing dielectric materials. In the future, the proposed microwave sensing system can be designed as a portable electronic device, and it can be applied to other detection scenarios.

Topics & Concepts

Materials scienceTransmission lineMicrostripElectrical impedanceCharacteristic impedanceReflection coefficientMicrowaveQuarter-wave impedance transformerElectric power transmissionAmplifierDifferential phasePermittivityOptoelectronicsElectronic engineeringRadio frequencyImpedance matchingElectrical engineeringDielectricDamping factorEngineeringTelecommunicationsKeyingCMOSMicrowave and Dielectric Measurement TechniquesRFID technology advancementsAdvanced Fiber Optic Sensors
A Novel Differential Microwave Sensor Based on Reflective-Mode Phase Variation of Stepped-Impedance Transmission Lines for Extracting Permittivity of Dielectric Materials | Litcius