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基于球形微腔的无膜菲佐干涉声学传感器。

Spherical microcavity-based membrane-free Fizeau interferometric acoustic sensor.

作者信息

Han Chunyang, Zhao Chenyu, Ding Hui, Chen Chen

出版信息

Opt Lett. 2019 Aug 1;44(15):3677-3680. doi: 10.1364/OL.44.003677.

DOI:10.1364/OL.44.003677
PMID:31368941
Abstract

The monitoring of acoustic waves is essential for a variety of applications, ranging from photoacoustic imaging to industrial non-destructive evaluation and monitoring. Optical acoustic sensors have many advantages over electrical counterparts such as passivity and immunity to electromagnetic interference, and can be quite compact with all-fiber structures. A common approach is to optically detect the acoustically induced mechanical movement of a cantilever or a reflective membrane. However, sensors based on moving mechanical parts have limitations, because they are influenced by the mechanical properties of the structures involved that behave as a coupled spring-mass system. Here a new type of optical acoustic sensing concept based on a spherical microcavity fiber Fizeau interferometer is described. The sensor is fabricated by inserting a section of single-mode fiber into a spherical microcavity to form a Fizeau interferometer. Thanks to the elasto-optic effect, the sound pressure modifies the refractive index of the microcavity; then a corresponding change in the interferometric spectrum can be observed. The sensor was successfully used to detect acoustic waves under the whole audible region, from 20 Hz to 20 kHz. The experimental results show that the sensitivity can be improved via altering the length of microcavity. The structure is membrane-free, and the sensitivity will not be limited by these size restrictions which makes the technology an interesting alternative to conventional transducers for acoustic wave measurement.

摘要

对声波的监测对于从光声成像到工业无损评估与监测等各种应用而言至关重要。光声传感器相较于电声传感器具有诸多优势,比如具有无源特性以及对电磁干扰免疫,并且全光纤结构使其能够相当紧凑。一种常见的方法是通过光学手段检测悬臂梁或反射膜因声学作用而产生的机械运动。然而,基于移动机械部件的传感器存在局限性,因为它们会受到作为耦合弹簧 - 质量系统的相关结构的机械性能的影响。在此描述了一种基于球形微腔光纤斐索干涉仪的新型光声传感概念。该传感器是通过将一段单模光纤插入球形微腔中以形成斐索干涉仪来制造的。由于弹光效应,声压会改变微腔的折射率;进而可以观察到干涉光谱的相应变化。该传感器已成功用于检测从20赫兹到20千赫兹的整个可听区域内的声波。实验结果表明,通过改变微腔长度可以提高灵敏度。该结构无膜,且灵敏度不会受到这些尺寸限制的约束,这使得该技术成为用于声波测量的传统换能器的一个有趣替代方案。

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