The effect of FeNi-AlN layer thickness on the response of magnetic SAW sensor by FEM simulation

Do Duy Phu, Hong Si Hoang, Le Van Vinh
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Abstract

In this study, we used simulation to investigate the optimal working point of a surface acoustic wave-magnetostriction sensor by varying the thickness of the magnetic sensitive layer using the finite elements method. We evaluated the sensor’s sensitivity by simulating the responses at the optimal point and changing the thickness of the magnetic sensitive layer (h3). Additionally, we reduced the piezoelectric substrate thickness (h1) at the optimal point to determine the limit point of the center frequency (f0) and improve the sensor sensitivity for low magnetic field intensity measurements by performing a wavelength reduction (λ). For the simulation, we selected a delay-line FeNi/IDT/AlN structure with specific materials and electrode parameters. Our results show that the optimal structure of the sensor is at h1=400 μm, λ=40 μm, and h3=1,060 nm, with a maximum f0 of 140.38493 MHz and maximum surface acoustic wave velocity of 5,615.4 m/s. At this optimal structure, the sensitivity reaches the maximum value of 10.287 kHz/Oe with a working range from 0 to 89 Oe. We also found that reducing the piezoelectric substrate thickness to 35 μm significantly reduces the manufacturing and simulation time, but the frequency response cannot determine the center frequency.
通过有限元模拟研究镍铝铁层厚度对磁性声表面波传感器响应的影响
在这项研究中,我们利用有限元法,通过改变磁敏感层的厚度,对表面声波-磁致伸缩传感器的最佳工作点进行了模拟研究。我们通过模拟最佳点的响应和改变磁敏感层的厚度 (h3) 来评估传感器的灵敏度。此外,我们还减小了最佳点的压电基板厚度 (h1),以确定中心频率 (f0) 的极限点,并通过减小波长 (λ) 来提高传感器对低磁场强度测量的灵敏度。在模拟中,我们选择了具有特定材料和电极参数的延迟线 FeNi/IDT/AlN 结构。结果表明,传感器的最佳结构为 h1=400 μm,λ=40 μm,h3=1,060 nm,最大 f0 为 140.38493 MHz,最大表面声波速度为 5,615.4 m/s。在此最佳结构下,灵敏度达到最大值 10.287 kHz/Oe,工作范围为 0 至 89 Oe。我们还发现,将压电基板厚度减小到 35 μm 可以显著缩短制造和模拟时间,但频率响应无法确定中心频率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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