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基于COM模型的声表面波气体传感器声电响应分析

Analysis of the acoustoelectric response of SAW gas sensors using a COM model.

作者信息

Yuan Yang, Yang Tao, Chen Xi, Yu Linglang, Hou Xiaoxiao, Zhang Guangzu, Dong Wen, Lu Zixiao, Li Honglang, Reindl Leonhard, Luo Wei

机构信息

School of Integrated Circuits, Huazhong University of Science and Technology, 430074 Wuhan, People's Republic of China.

CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, 100190 Beijing, People's Republic of China.

出版信息

Microsyst Nanoeng. 2024 May 24;10:69. doi: 10.1038/s41378-024-00673-w. eCollection 2024.

Abstract

Surface acoustic wave (SAW) gas sensors based on the acoustoelectric effect exhibit wide application prospects for in situ gas detection. However, establishing accurate models for calculating the scattering parameters of SAW gas sensors remains a challenge. Here, we present a coupling of modes (COM) model that includes the acoustoelectric effect and specifically explains the nonmonotonic variation in the center frequency with respect to the sensing film's sheet conductivity. Several sensing parameters of the gas sensors, including the center frequency, insertion loss, and phase, were experimentally compared for accuracy and practicality. Finally, the frequency of the phase extremum (FPE) shift was determined to vary monotonically, and the range of selectable test points was wide, making the FPE an appropriate response parameter for leveraging in SAW gas sensors. The simulation results of the COM model were highly consistent with the experimental results. Our study is proposed to provide theoretical guidance for the future development of gas SAW sensors.

摘要

基于声电效应的表面声波(SAW)气体传感器在原位气体检测方面展现出广阔的应用前景。然而,建立精确模型来计算SAW气体传感器的散射参数仍然是一项挑战。在此,我们提出一种包含声电效应的模式耦合(COM)模型,该模型具体解释了中心频率相对于传感薄膜表面电导率的非单调变化。通过实验比较了气体传感器的几个传感参数,包括中心频率、插入损耗和相位,以评估其准确性和实用性。最后,确定相位极值频率(FPE)偏移呈单调变化,且可选测试点范围广,这使得FPE成为SAW气体传感器中合适的响应参数。COM模型的模拟结果与实验结果高度一致。我们的研究旨在为气体SAW传感器的未来发展提供理论指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31cc/11126560/31d5a7eea179/41378_2024_673_Fig1_HTML.jpg

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