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用于小动物成像的曲面阵列光声断层扫描系统。

Curved array photoacoustic tomographic system for small animal imaging.

作者信息

Gamelin John, Aguirre Andres, Maurudis Anastasios, Huang Fei, Castillo Diego, Wang Lihong V, Zhu Quing

机构信息

University of Connecticut, Department of Electrical Engineering, Storrs, Connecticut 06269, USA.

出版信息

J Biomed Opt. 2008 Mar-Apr;13(2):024007. doi: 10.1117/1.2907157.

Abstract

We present systematic characterization of a photoacoustic imaging system optimized for rapid, high-resolution tomographic imaging of small animals. The system is based on a 128-element ultrasonic transducer array with a 5-MHz center frequency and 80% bandwidth shaped to a quarter circle of 25 mm radius. A 16-channel data-acquisition module and dedicated channel detection electronics enable capture of a 90-deg field-of-view image in less than 1 s and a complete 360-deg scan using sample rotation within 15 s. Measurements on cylindrical phantom targets demonstrate a resolution of better than 200 microm and high-sensitivity detection of 580-microm blood tubing to depths greater than 3 cm in a turbid medium with reduced scattering coefficient mu(s) (')=7.8 cm(-1). The system is used to systematically investigate the effects of target size, orientation, and geometry on tomographic imaging. As a demonstration of these effects and the system imaging capabilities, we present tomographic photoacoustic images of the brain vasculature of an ex vivo mouse with varying measurement aperture. For the first time, according to our knowledge, resolution of sub-200-microm vessels with an overlying turbid medium of greater than 2 cm depth is demonstrated using only intrinsic biological contrast.

摘要

我们展示了一种针对小动物快速、高分辨率断层成像进行优化的光声成像系统的系统特性。该系统基于一个128阵元的超声换能器阵列,中心频率为5MHz,带宽为80%,形状为半径25mm的四分之一圆。一个16通道数据采集模块和专用通道检测电子设备能够在不到1秒的时间内采集90度视野的图像,并通过样品旋转在15秒内完成360度的完整扫描。对圆柱形体模目标的测量表明,在散射系数μ(s)' = 7.8 cm-1的浑浊介质中,分辨率优于200微米,能够高灵敏度检测到580微米的血管,深度超过3厘米。该系统用于系统地研究目标大小、方向和几何形状对断层成像的影响。作为这些影响和系统成像能力的一个展示,我们展示了具有不同测量孔径的离体小鼠脑血管的断层光声图像。据我们所知,首次仅使用内在生物对比度就展示了在深度大于2厘米的覆盖浑浊介质下亚200微米血管的分辨率。

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