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Design Considerations and Performance of MEMS Acoustoelectric Ultrasound Detectors

机译:MEMS声电超声探测器的设计考虑和性能

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摘要

Most single-element hydrophones depend on a piezoelectric material that converts pressure changes to electricity. These devices, however, can be expensive, susceptible to damage at high pressure, and/or have limited bandwidth and sensitivity. We have previously described the acoustoelectric (AE) hydrophone as an inexpensive alternative for mapping an ultrasound beam and monitoring acoustic exposure. The device exploits the AE effect, an interaction between electrical current flowing through a material and a propagating pressure wave. Previous designs required imprecise fabrication methods using common laboratory supplies, making it difficult to control basic features such as shape and size. This study describes a different approach based on microelectromechanical systems (MEMS) processing that allows for much finer control of several design features. In an effort to improve the performance of the AE hydrophone, we combine simulations with bench-top testing to evaluate key design features, such as thickness, shape, and conductivity of the active and passive elements. The devices were evaluated in terms of sensitivity, frequency response, and accuracy for reproducing the beam pattern. Our simulations and experimental results both indicated that designs using a combination of indium tin oxide (ITO) for the active element and gold for the passive electrodes (conductivity ratio = ~20) produced the best result for mapping the beam of a 2.25-MHz ultrasound transducer. Also, the AE hydrophone with a rectangular dumbbell configuration achieved a better beam pattern than other shape configurations. Lateral and axial resolutions were consistent with images generated from a commercial capsule hydrophone. Sensitivity of the best-performing device was 1.52 nV/Pa at 500 kPa using a bias voltage of 20 V. We expect a thicker AE hydrophone closer to half the acoustic wavelength to produce even better sensitivity, while maintaining high spectral bandwidth for characterizing medical ultrasound transducers. AE ultrasound detectors may also be useful for monitoring acoustic exposure during therapy or as receivers for photoacoustic imaging.
机译:大多数单元素水听器都依赖于将压力变化转换为电能的压电材料。然而,这些设备可能很昂贵,易于在高压下损坏,和/或带宽和灵敏度有限。前面我们已经将声电(AE)水听器描述为映射超声波束和监控声波暴露的廉价替代品。该设备利用AE效应,即通过材料流动的电流与传播的压力波之间的相互作用。先前的设计需要使用普通实验室耗材的不精确制造方法,这使得难以控制基本特征(例如形状和尺寸)。这项研究描述了一种基于微机电系统(MEMS)处理的不同方法,该方法可以更好地控制几个设计特征。为了提高AE水听器的性能,我们将模拟与台式测试相结合,以评估关键设计功能,例如有源和无源元件的厚度,形状和电导率。对设备进行了灵敏度,频率响应和再现光束图案精度的评估。我们的仿真和实验结果均表明,将铟锡氧化物(ITO)用作有源元件,将金用作无源电极(电导率=〜20)的组合产生的最佳结果是绘制2.25 MHz超声波束传感器。而且,具有矩形哑铃构造的AE水听器比其他形状构造具有更好的波束方向图。横向和轴向分辨率与从商用胶囊水听器产生的图像一致。在20 kV偏置电压下,性能最佳的设备在500 kPa时的灵敏度为1.52 nV / Pa。我们期望更厚的AE水听器接近声波波长的一半,以产生更高的灵敏度,同时保持用于表征医学超声的高光谱带宽换能器。 AE超声检测器还可用于监测治疗过程中的声暴露或用作光声成像的接收器。

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