Microacoustic Sensors for Liquid Monitoring

F. Herrmann, B. Jakoby, J. Rabe, S. Büttgenbach
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引用次数: 38

Abstract

In recent years, much effort has been expended to developing miniaturized, reliable sensors for measuring physical and chemical liquid properties. Microacoustic devices may be employed to determinate physical quantities perturbing the propagation conditions of the acoustic wave, even in liquid environments. For liquid sensors, acoustic modes with shear polarization are often used in order to avoid radiation losses. Examples are shear bulk modes, surface skimming bulk waves, shear-horizontal acoustic plate modes, and Love modes. Furthermore, modes with sagittal polarization may be applied if their phase velocity is sufficiently lower than the sound velocity in the adjacent liquid. General interactions between acoustic waves and liquids are viscous coupling, acoustoelectric effects, and mass loading. The resulting changes in device frequency and attenuation may be utilized for sensing purposes. The general advantages of microacoustic sensors are high sensitivity, simple fabrication, and quasidigital frequency readout. Hence, a wide variety of devices based on different modes for very different applications has been discussed in the relevant literature. The aim of this review is to provide a systematic overview of microacoustic sensors particularlay suited for operation in liquids. First, we provide a brief introduction to surface acoustic wave devices and the underlying physics, basic microacoustic structures, and general measurement techniques. A description of the mechanisms of interaction between liquids and acoustic waves is then followed by a comprehensive survey covering the different types of microacoustic liquid sensors, with emphasis on the mode-specific device properties. Thereafter, aspects of material selection and device fabrication are summarized. Lastly, an overview is given indicating where microacoustic liquid sensors have already been put into practice and where their application may be expected in the near future.
液体监测用微声传感器
近年来,人们花费了大量的精力来开发用于测量液体物理和化学性质的小型化、可靠的传感器。微声装置可用于确定干扰声波传播条件的物理量,即使在液体环境中也是如此。对于液体传感器,通常采用具有剪切极化的声模式,以避免辐射损失。例如剪切体模态、表面掠过体波、剪切-水平声板模态和Love模态。此外,矢状极化模式可以应用,如果他们的相速度足够低于声速在邻近的液体。声波与液体之间的一般相互作用是粘性耦合、声电效应和质量载荷。所产生的器件频率和衰减的变化可用于传感目的。微声传感器具有灵敏度高、制作简单、准数字频率读出等优点。因此,在相关文献中讨论了基于不同模式的各种各样的器件,用于非常不同的应用。这篇综述的目的是对特别适合在液体中工作的微声传感器提供一个系统的概述。首先,我们简要介绍了表面声波器件及其基础物理,基本微声结构和一般测量技术。描述了液体和声波之间相互作用的机制,然后对不同类型的微声液体传感器进行了全面的调查,重点是特定模式的器件特性。然后,总结了材料选择和器件制造方面的问题。最后,概述了微声液体传感器的应用领域和应用前景。
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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