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使用石墨烯隔膜的法布里-珀罗声学传感器评估一种受人类耳朵启发的声压放大结构。

Evaluating a Human Ear-Inspired Sound Pressure Amplification Structure with Fabry-Perot Acoustic Sensor Using Graphene Diaphragm.

作者信息

Li Cheng, Xiao Xi, Liu Yang, Song Xuefeng

机构信息

School of Instrumentation Science and Opto-Electronics Engineering, Beihang University, Beijing 100191, China.

Research Institute of Beihang University in Shenzhen, Shenzhen 518055, China.

出版信息

Nanomaterials (Basel). 2021 Sep 2;11(9):2284. doi: 10.3390/nano11092284.

Abstract

In order to enhance the sensitivity of a Fabry-Perot (F-P) acoustic sensor without the need of fabricating complicated structures of the acoustic-sensitive diaphragm, a mini-type external sound pressure amplification structure (SPAS) with double 10 μm thickness E-shaped diaphragms of different sizes interconnected with a 5 mm length tapered circular rod was developed based on the acoustic sensitive mechanism of the ossicular chain in the human middle ear. The influence of thickness and Young's modulus of the two diaphragms with the diameters of 15 mm and 3 mm, respectively, on the amplification ratio and frequency response were investigated via COMSOL acoustic field simulation, thereby confirming the dominated effect. Then, three kinds of dual-diaphragm schemes relating to steel and thermoplastic polyurethanes (TPU) materials were introduced to fabricate the corresponding SPASs. The acoustic test showed that the first scheme achieved a high resonant response frequency with lower acoustic amplification due to strong equivalent stiffness; in contrast, the second scheme offered a high acoustic amplification but reduced frequency range. As a result of sensitivity enhancement, adapted with the steel/TPU diaphragm structure, an optical fiber Fabry-Perot sensor using a multilayer graphene diaphragm with a diameter of 125 μm demonstrated a remarkable sensitivity of 565.3 mV/Pa @1.2 kHz due to the amplification ratio of up to ~29.9 in the range of 0.2-2.3 kHz, which can be further improved by miniaturizing structure dimension, along with the use of microstructure packaging technology.

摘要

为了在无需制造复杂的声敏振膜结构的情况下提高法布里-珀罗(F-P)声学传感器的灵敏度,基于人中耳听骨链的声敏机制,开发了一种微型外部声压放大结构(SPAS),该结构具有两个厚度为10μm、尺寸不同的E形振膜,通过一根长度为5mm的锥形圆杆相互连接。通过COMSOL声场模拟研究了分别具有15mm和3mm直径的两个振膜的厚度和杨氏模量对放大率和频率响应的影响,从而确定了主导作用。然后,引入了三种与钢和热塑性聚氨酯(TPU)材料相关的双振膜方案来制造相应的SPAS。声学测试表明,第一种方案由于等效刚度大而实现了高谐振响应频率,但声放大较低;相比之下,第二种方案提供了高声放大,但频率范围减小。由于灵敏度提高,采用钢/TPU振膜结构的光纤法布里-珀罗传感器,使用直径为125μm的多层石墨烯振膜,在0.2-2.3kHz范围内放大率高达~29.9,在1.2kHz时表现出565.3mV/Pa的显著灵敏度,通过减小结构尺寸以及使用微结构封装技术可以进一步提高灵敏度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2f5f/8465274/e112653695fc/nanomaterials-11-02284-g001.jpg

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