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用于无膜声学传感器的高Q值环形谐振器设计与优化的替代方法

Alternative Approach to Design and Optimization of High-Q Ring Resonators for Membrane-Free Acoustic Sensors.

作者信息

Zheng Yongqiu, Chen Jiamin, Han Yuan, Bai Jiandong, Luo Yifan, Wang Yonghua, Xue Chenyang

机构信息

State Key Laboratory of Dynamic Measurement Technology, North University of China, Taiyuan 030051, China.

出版信息

Micromachines (Basel). 2023 Sep 29;14(10):1876. doi: 10.3390/mi14101876.

Abstract

Membrane-free acoustic sensors based on new principle and structure are becoming a research hotspot, because of many advantages, e.g., their wide bandwidth and high sensitivity. It is proposed that a membrane-free acoustic sensor employs a semi-buried optical waveguide ring resonator (SOWRR) as a sensing element. Using air as the upper cladding medium, the excited evanescent field in the air cladding medium would be modulated by acoustic wave. On this basis, the acoustic sensing model is established. Taking high Q factor and resonance depth as design criteria, the optimal design parameters are given. The optimal values of the air/SiO: Ge/SiO waveguide resonator length and coupling spacing are obtained as 50 mm and 5.6 μm, respectively. The Q factor of the waveguide resonator of this size is as high as 8.33 × 10. The theoretical simulation indicates that the frequency response ranges from 1 Hz to 1.58 MHz and that the minimum detectable sound pressure is 7.48 µPa using a laser with linewidth of 1 kHz. Because of its advantages of wide bandwidth and high sensitivity, the membrane-free sensor is expected to become one of the most promising candidates for the next-generation acoustic sensor.

摘要

基于新原理和结构的无膜声学传感器正成为研究热点,因其具有诸多优点,如带宽宽、灵敏度高。提出一种无膜声学传感器采用半埋入式光波导环形谐振器(SOWRR)作为传感元件。以上层空气作为包层介质,空气中包层介质中激发的倏逝场将被声波调制。在此基础上,建立了声学传感模型。以高Q因子和共振深度为设计标准,给出了最佳设计参数。空气/SiO:Ge/SiO光波导谐振器长度和耦合间距的最佳值分别为50 mm和5.6 µm。该尺寸光波导谐振器的Q因子高达8.33×10。理论模拟表明,频率响应范围为1 Hz至1.58 MHz,使用线宽为1 kHz的激光时,最小可检测声压为7.48 µPa。由于其带宽宽和灵敏度高的优点,无膜传感器有望成为下一代声学传感器中最有前途的候选者之一。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fd16/10609190/62df681a432a/micromachines-14-01876-g001.jpg

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