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A 3-D High-Frequency Array Based 16 Channel Photoacoustic Microscopy System for In Vivo Micro-Vascular Imaging

机译:用于体内微血管成像的基于3-D高频阵列的16通道光声显微镜系统

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摘要

This paper discusses the design of a novel photoacoustic microscopy imaging system with promise for studying the structure of tissue microvasculature for applications in visualizing angiogenesis. A new 16 channel analog and digital high-frequency array based photoacoustic microscopy system (PAM) was developed using an Nd: YLF pumped tunable dye laser, a 30 MHz piezo composite linear array transducer, and a custom multichannel receiver electronics system. Using offline delay and sum beam- forming and beamsteering, phantom images were obtained from a 6 µm carbon fiber in water at a depth of 8 mm. The measured -6 dB lateral and axial spatial resolution of the system was 100 ± 5 µm and 45 ± 5 µm, respectively. The dynamic focusing capability of the system was demonstrated by imaging a composite carbon fiber matrix through a 12.5 mm imaging depth. Next, 2-D in vivo images were formed of vessels around 100 µm in diameter in the human hand. Three-dimensional in vivo images were also formed of micro-vessels 3 mm below the surface of the skin in two Sprague Dawley rats.
机译:本文讨论了一种新型的光声显微镜成像系统的设计,有望研究组织微脉管系统的结构,以可视化血管生成。使用Nd:YLF泵浦可调染料激光器,30 MHz压电复合线性阵列换能器和定制的多通道接收器电子系统,开发了一种新的基于16通道模拟和数字高频阵列的光声显微镜系统(PAM)。使用离线延迟,总波束形成和波束控制,从水中的6 µm碳纤维中以8 mm的深度获得了幻影图像。测得的系统的-6 dB横向和轴向空间分辨率分别为100±5 µm和45±5 µm。通过对复合碳纤维基质进行12.5 mm的成像深度成像,证明了该系统的动态聚焦能力。接下来,在人的手中由直径约100 µm的血管形成二维体内图像。在两只Sprague Dawley大鼠中,在皮肤表面以下3 mm处的微血管也形成了三维体内图像。

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