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用于光纤共聚焦反射显微镜的高数值孔径微型注塑物镜的设计、组装及光具座测试。

Design, assembly, and optical bench testing of a high-numerical-aperture miniature injection-molded objective for fiber-optic confocal reflectance microscopy.

作者信息

Chidley Matthew D, Carlson Kristen D, Richards-Kortum Rebecca R, Descour Michael R

机构信息

College of Optical Sciences, University of Arizona, Tucson 85721, USA.

出版信息

Appl Opt. 2006 Apr 10;45(11):2545-54. doi: 10.1364/ao.45.002545.

DOI:10.1364/ao.45.002545
PMID:16623254
Abstract

The design, analysis, assembly methods, and optical-bench test results for a miniature injection-molded plastic objective lens used in a fiber-optic confocal reflectance microscope are presented. The five-lens plastic objective was tested as a stand-alone optical system before its integration into a confocal microscope for in vivo imaging of cells and tissue. Changing the spacing and rotation of the individual optical elements can compensate for fabrication inaccuracies and improve performance. The system performance of the miniature objective lens is measured by use of an industry-accepted slanted-edge modulation transfer function (MTF) metric. An estimated Strehl ratio of 0.61 and a MTF value of 0.66 at the fiber-optic bundle Nyquist frequency have been obtained. The optical bench testing system is configured to permit interactive optical alignment during testing to optimize performance. These results are part of an effort to demonstrate the manufacturability of low-cost, high-performance biomedical optics for high-resolution in vivo imaging. Disposable endoscopic microscope objectives could help in vivo confocal microscopy technology mature to permit wide-scale clinical screening and detection of early cancers and precancerous lesions.

摘要

介绍了一种用于光纤共焦反射显微镜的微型注塑塑料物镜的设计、分析、组装方法及光具座测试结果。在将五透镜塑料物镜集成到共焦显微镜用于细胞和组织的体内成像之前,先将其作为独立光学系统进行了测试。改变各个光学元件的间距和旋转角度可以补偿制造误差并提高性能。微型物镜的系统性能通过使用行业认可的倾斜边缘调制传递函数(MTF)指标来测量。在光纤束奈奎斯特频率下,获得了估计的斯特列尔比为0.61,MTF值为0.66。光具座测试系统配置为在测试期间允许交互式光学对准以优化性能。这些结果是为证明用于高分辨率体内成像的低成本、高性能生物医学光学器件的可制造性所做努力的一部分。一次性内镜显微镜物镜有助于体内共焦显微镜技术成熟,从而实现早期癌症和癌前病变的大规模临床筛查和检测。

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