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Water-Immersible MEMS Scanning Mirror Designed for Wide-field Fast-scanning Photoacoustic Microscopy

机译:专为广域快速扫描光声显微镜设计的不透水MEMS扫描镜

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By offering images with high spatial resolution and unique optical absorption contrast, optical-resolution photoacoustic microscopy (OR-PAM) has gained increasing attention in biomedical research. Recent developments in OR-PAM have improved its imaging speed, but have sacrificed either the detection sensitivity or field of view or both. We have developed a wide-field fast-scanning OR-PAM by using a water-immersible MEMS scanning mirror (MEMS-OR-PAM). Made of silicon with a gold coating, the MEMS mirror plate can reflect both optical and acoustic beams. Because it uses an electromagnetic driving force, the whole MEMS scanning system can be submerged in water. In MEMS-OR-PAM, the optical and acoustic beams are confocally configured and simultaneously steered, which ensures uniform detection sensitivity. A B-scan imaging speed as high as 400 Hz can be achieved over a 3 mm scanning range. A diffraction-limited lateral resolution of 2.4 μm in water and a maximum imaging depth of 1.1 mm in soft tissue have been experimentally determined. Using the system, we imaged the flow dynamics of both red blood cells and carbon particles in a mouse ear in vivo. By using Evans blue dye as the contrast agent, we also imaged the flow dynamics of lymphatic vessels in a mouse tail in vivo. The results show that MEMS-OR-PAM could be a powerful tool for studying highly dynamic and time-sensitive biological phenomena.
机译:通过提供具有高空间分辨率和独特的光吸收对比度的图像,光学分辨率光声显微镜(OR-PAM)在生物医学研究中得到了越来越多的关注。 OR-PAM的最新发展提高了其成像速度,但牺牲了检测灵敏度或视野,或两者兼而有之。我们已经通过使用水浸式MEMS扫描镜(MEMS-OR-PAM)开发了一种广域快速扫描OR-PAM。 MEMS镜板由具有金涂层的硅制成,可以反射光束和声束。由于它利用电磁驱动力,因此整个MEMS扫描系统可以浸入水中。在MEMS-OR-PAM中,共聚焦光束和声束并同时对其进行转向,从而确保了均匀的检测灵敏度。在3 mm的扫描范围内,可以实现高达400 Hz的B扫描成像速度。实验确定了在水中衍射极限横向分辨率为2.4μm,在软组织中的最大成像深度为1.1 mm。使用该系统,我们对小鼠体内的红血球和碳颗粒的流动动力学进行了成像。通过使用伊文思蓝染料作为造影剂,我们还对体内小鼠尾巴中淋巴管的流动动力学进行了成像。结果表明,MEMS-OR-PAM可能是研究高度动态和对时间敏感的生物现象的有力工具。

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