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单晶硅/二氧化硅/氧化锌压电结构中多频表面声波器件的实验与理论研究

Experimental and Theoretical Study of Multifrequency Surface Acoustic Wave Devices in a Single Si/SiO/ZnO Piezoelectric Structure.

作者信息

Caliendo Cinzia, Laidoudi Farouk

机构信息

Institute for Photonics and Nanotechnologies, IFN-CNR, Via Cineto Romano 42, 00156 Rome, Italy.

Research Center in Industrial Technologies CRTI, P.O. Box 64 Cheraga, Algiers 16014, Algeria.

出版信息

Sensors (Basel). 2020 Mar 3;20(5):1380. doi: 10.3390/s20051380.

DOI:10.3390/s20051380
PMID:32138294
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7085766/
Abstract

The propagation of surface acoustic waves (SAWs) along a ZnO/SiO/Si piezoelectric structure is experimentally and theoretically studied. Six surface acoustic modes were experimentally detected in the 134 to 570 MHz frequency range, for acoustic wavelength λ = 30 μm, and for SiO and ZnO layers with a thickness of 1 and 2.4 μm. The numerical and three-dimensional (3D) finite element method analysis revealed that the multilayered substrate supports the propagation of Rayleigh and Sezawa modes (R and S), their third and fifth harmonics at λ/3 and λ/5. The velocity of all the modes was found in good agreement with the theoretically predicted values. Eigenfrequency, frequency domain, and time domain studies were performed to calculate the velocity, the electroacoustic coupling coefficient, the shape of the modes, the propagation loss, and the scattering parameter S of the SAW delay lines based on the propagation of these modes. The sensitivity to five different gases (dichloromethane, trichloromethane, carbontetrachloride, tetrachloroethylene, and trichloroethylene) was calculated under the hypothesis that the ZnO surface is covered by a polyisobutylene (PIB) layer 0.8 µm thick. The results show that the modes resonating at different frequencies exhibit different sensitivities toward the same gas. The multi-frequency ZnO/SiO/Si single device structure is a promising solution for the development of a multiparameters sensing platform; multiple excitation frequencies with different sensing properties can allow the parallel analysis of the same gas with improved accuracy.

摘要

对沿ZnO/SiO/Si压电结构传播的表面声波(SAW)进行了实验和理论研究。在134至570 MHz频率范围内,对于声学波长λ = 30 μm,以及厚度为1和2.4 μm的SiO和ZnO层,通过实验检测到了六种表面声波模式。数值和三维(3D)有限元方法分析表明,多层衬底支持瑞利模式和泽瓦模式(R和S)及其在λ/3和λ/5处的三次和五次谐波的传播。发现所有模式的速度与理论预测值吻合良好。基于这些模式的传播,进行了本征频率、频域和时域研究,以计算SAW延迟线的速度、电声耦合系数、模式形状、传播损耗和散射参数S。在假设ZnO表面覆盖有0.8 µm厚的聚异丁烯(PIB)层的情况下,计算了对五种不同气体(二氯甲烷、三氯甲烷、四氯化碳、四氯乙烯和三氯乙烯)的灵敏度。结果表明,在不同频率下共振的模式对同一种气体表现出不同的灵敏度。多频ZnO/SiO/Si单器件结构是开发多参数传感平台的一种有前途的解决方案;具有不同传感特性的多个激发频率可以允许以更高的精度对同一种气体进行并行分析。

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