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Characterization of integrating ultrasound detectors for photoacoustic tomography

机译:用于光声层析成像的集成超声检测器的特性

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摘要

Photoacoustic tomography is based on generation of sound waves in a semitransparent medium by illumination with short light pulses. In standard methods, measurements of the acoustic waves around the sample with point like ultrasound detectors are used for reconstruction of the distribution of absorbed energy, which contains information on light-absorbing structures such as blood vessels in tissue. Integrating ultrasound detectors are planes or lines larger than the imaged object and measure temporal signals that are given by spatial integrals over the sound field. It can be shown that such integrated signals give exact reconstructions with constant, high resolution throughout the imaging zone. The goal of the present study was to investigate with the help of simulations and experiments how far real implementations of integrating detectors based on piezoelectric films or optical interferometry have characteristics approximating those of ideal planes or lines. It is shown that the directive sensitivity of piezoelectric films tends to distort signals, mainly in the case of large area detectors. This distortion can, on the other hand, be used to directly measure a part of the directivity that is caused by distribution of stress components in the detector. Optical beams as part of an interferometer have omnidirectional response, but need focusing in order to achieve high temporal and spatial resolution. For example, with a beam focused to a diameter of 38 μm a spatial image resolution of 52 μm could be observed. Because of the beam waist, this resolution can only be achieved for acoustic sources lying within a range corresponding to the focal depth of the beam. It is concluded that line detectors made of piezoelectric thin films yield almost ideal performance for acoustic waves at normal incidence. Even better suited for photoacoustic tomography are focused optical beams as line detectors due to their omnidirectional response and higher signal to noise ratio, but only for objects with a size smaller than the focal depth.
机译:光声层析成像是基于通过短光脉冲的照射在半透明介质中产生声波。在标准方法中,使用类似超声检测器的点对样品周围的声波进行测量,以重建吸收能量的分布,该能量包含有关光吸收结构(例如组织中的血管)的信息。集成超声检测器是比成像对象大的平面或线,并测量由声场上的空间积分给出的时间信号。可以证明,这样的积分信号在整个成像区域内以恒定的高分辨率给出了精确的重构。本研究的目的是在模拟和实验的帮助下研究基于压电薄膜或光学干涉仪的集成检测器的实际实现方式具有接近理想平面或直线的特性的程度。结果表明,主要在大面积检测器的情况下,压电膜的定向灵敏度趋于使信号失真。另一方面,该失真可用于直接测量由检测器中应力分量的分布引起的一部分方向性。作为干涉仪一部分的光束具有全向响应,但是需要聚焦才能实现高的时间和空间分辨率。例如,使用聚焦到38μm直径的光束,可以观察到52μm的空间图像分辨率。由于束腰,该分辨率仅对于位于与束的焦深相对应的范围内的声源才能实现。结论是,由压电薄膜制成的线检测器对于垂直入射的声波可产生几乎理想的性能。由于它们的全向响应和更高的信噪比,甚至更适合于光声层析成像的是聚焦光束作为线检测器,但仅适用于尺寸小于焦深的物体。

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  • 来源
    《Journal of Applied Physics》 |2009年第10期|102026.1-102026.9|共9页
  • 作者单位

    Department of Physics, University of Graz, Universitaetsplatz 5, 8010 Graz, Austria;

    Department of Physics, University of Graz, Universitaetsplatz 5, 8010 Graz, Austria;

    Upper Austrian Research, Hafenstrasse 47-51, 4020 Linz, Austria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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