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超微型光学设计用于多光谱荧光成像内窥镜。

Ultraminiature optical design for multispectral fluorescence imaging endoscopes.

机构信息

University of Arizona, College of Optical Sciences, Tucson, Arizona, United States.

University of Arizona, Biomedical Engineering, Tucson, Arizona, United States.

出版信息

J Biomed Opt. 2017 Mar 1;22(3):36013. doi: 10.1117/1.JBO.22.3.036013.

Abstract

A miniature wide-field multispectral endoscopic imaging system was developed enabling reflectance and fluorescence imaging over a broad wavelength range. At 0.8-mm diameter, the endoscope can be utilized for natural orifice imaging in small lumens such as the fallopian tubes. Five lasers from 250 to 642 nm are coupled into a 125 - ? m diameter multimode fiber and transmitted to the endoscope distal tip for illumination. Ultraviolet and blue wavelengths excite endogenous fluorophores, which can provide differential fluorescence emission images for health and disease. Visible wavelengths provide reflectance images that can be combined for pseudo-white-light imaging and navigation. Imaging is performed by a 300 - ? m diameter three-element lens system connected to a 3000-element fiber. The lens system was designed for a 70-deg full field of view, working distance from 3 mm to infinity, and 40% contrast at the Nyquist cutoff of the fiber bundle. Measured performance characteristics are near design goals. The endoscope was utilized to obtain example monochromatic, pseudo-white-light, and composite fluorescence images of phantoms and porcine reproductive tract. This work shows the feasibility of packaging a highly capable multispectral fluorescence imaging system into a miniature endoscopic system that may have applications in early detection of cancer.

摘要

开发了一种微型广角多光谱内窥镜成像系统,能够在宽波长范围内进行反射和荧光成像。该内窥镜直径为 0.8 毫米,可用于小腔道(如输卵管)的自然腔道成像。5 个波长范围为 250 至 642nm 的激光器被耦合到一个 125μm 的多模光纤中,并传输到内窥镜远端尖端进行照明。紫外和蓝光激发内源性荧光团,可提供用于健康和疾病的荧光发射图像。可见光波长提供反射图像,可用于组合伪白光成像和导航。成像由一个连接到 3000 个元件光纤的 300μm 直径的三元件透镜系统完成。该透镜系统设计用于 70 度全视场,工作距离为 3 毫米至无穷远,并且在光纤束奈奎斯特截止处具有 40%的对比度。测量的性能特征接近设计目标。该内窥镜用于获得猪生殖道和组织模型的单色、伪白光和复合荧光图像示例。这项工作表明,将功能强大的多光谱荧光成像系统封装到微型内窥镜系统中是可行的,这种系统可能在癌症的早期检测中有应用。

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