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An equivalent circuit model for a liquid loaded lateral-field excited acoustic wave sensor

机译:液体加载侧场激发声波传感器的等效电路模型

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The lateral field excited (LFE) acoustic wave sensor element has been shown to be more sensitive to mass, viscous, and electrical loading than the quartz crystal microbalance. Much of this advantage is due to the bare sensing surface of the LFE sensor element, which has its exciting electrodes on the crystal face that is not exposed to the analyte. The objective of this work is to present an equivalent circuit model of the LFE sensor element loaded with a Newtonian liquid. The circuit model will predict the sensor response near resonance to mechanical and electrical property changes in the liquid or sensing film due to mechanical and electrical perturbations. The equivalent circuit model developed results in an accurate, within ±5%, admittance near the resonant frequency for LFE sensors in deionized water. The model predicts the frequency shift of the LFE sensor to perturbations in the density, viscosity, permittivity, and conductivity of the contacting liquid. For example, the predicted frequency shift is within ±5 ppm for viscous loading and ±50 ppm for dielectric loading when compared to measured frequency shifts.
机译:事实证明,横向场激发(LFE)声波传感器元件比石英微天平对质量,粘性和电负载更敏感。这种优势的大部分归因于LFE传感器元件的裸露传感表面,该传感器的激励电极位于不暴露于分析物的晶面上。这项工作的目的是提供一个装有牛顿液体的LFE传感器元件的等效电路模型。电路模型将预测由于机械和电气扰动,传感器对接近液体或传感膜中机械和电气特性变化的共振的响应。开发出的等效电路模型可在去离子水中LFE传感器的谐振频率附近实现精确的导纳在±5%之内。该模型可预测LFE传感器的频移,使其对接触液体的密度,粘度,介电常数和电导率产生干扰。例如,与测得的频移相比,粘性负载的预测频移在±5 ppm以内,电介质负载的预测频移在±50 ppm以内。

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