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Design considerations for ultrasound detectors in photoacoustic breast imaging

机译:光声乳腺成像中超声检测器的设计注意事项

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The ultrasound detector is the heart of a photoacoustic imaging system. In photoacoustic imaging of the breast there is a requirement to detect tumors located a few centimeters deep in tissue, where the light is heavily attenuated. Thus a sensitive ultrasound transducer is of crucial importance. As the frequency content of photoacoustic waves are inversely proportional to the dimensions of the absorbing structures, and in tissue can range from hundreds of kHz to tens of MHz, a broadband ultrasound transducer is required centered on an optimum frequency. A single element piezoelectric transducer structurally consists of the active piezoelectric material, front- and back-matching layers and a backing layer. To have both high sensitivity and broad bandwidth, the materials, their acoustic characteristics and their dimensions should be carefully chosen. In this paper, we present design considerations of an ultrasound transducer for imaging the breast such as the detector sensitivity and frequency response, which guides the selection of active material, matching layers and their geometries. We iterate between simulation of detector performance and experimental characterization of functional models to arrive at an optimized implementation. For computer simulation, we use 1D KLM and 3D finite-element based models. The optimized detector has a large-aperture possessing a center frequency of 1 MHz with fractional bandwidth of more than 80%. The measured minimum detectable pressure is 0.5 Pa, which is two orders of magnitude lower than the detector used in the Twente photoacoustic mammoscope.
机译:超声波探测器是光声成像系统的心脏。在乳房的光声成像中,需要检测位于组织中几厘米深处的肿瘤,在该组织中光被严重衰减。因此,灵敏的超声换能器至关重要。由于光声波的频率含量与吸收结构的尺寸成反比,并且在组织中的频率范围从数百kHz到数十MHz,因此需要以最佳频率为中心的宽带超声换能器。单元件压电换能器在结构上由活性压电材料,前后匹配层和衬里层组成。为了同时具有高灵敏度和宽带宽,应仔细选择材料,其声学特性和尺寸。在本文中,我们介绍了用于对乳房成像的超声换能器的设计注意事项,例如探测器的灵敏度和频率响应,它指导了活性材料,匹配层及其几何形状的选择。我们在检测器性能的仿真与功能模型的实验表征之间进行迭代,以实现优化的实现。对于计算机仿真,我们使用基于1D KLM和3D有限元的模型。经过优化的检测器具有一个大孔径,中心频率为1 MHz,分数带宽超过80%。测得的最小可检测压力为0.5 Pa,这比Twente光声乳房镜使用的检测器低两个数量级。

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