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Design methodology for a confocal imaging system using an objective microlens array with an increased working distance

机译:使用增加工作距离的物镜微透镜阵列的共焦成像系统的设计方法

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In this study, a design methodology for a multi-optical probe confocal imaging system was developed. To develop an imaging system that has the required resolving power and imaging area, this study focused on a design methodology to create a scalable and easy-to-implement confocal imaging system. This system overcomes the limitations of the optical complexities of conventional multi-optical probe confocal imaging systems and the short working distance using a micro-objective lens module composed of two microlens arrays and a telecentric relay optical system. The micro-objective lens module was fabricated on a glass substrate using backside alignment photolithography and thermal reflow processes. To test the feasibility of the developed methodology, an optical system with a resolution of 1?μm/pixel using multi-optical probes with an array size of 10?×?10 was designed and constructed. The developed system provides a 1?mm?×?1?mm field of view and a sample scanning range of 100?μm. The optical resolution was evaluated by conducting sample tests using a knife-edge detecting method. The measured lateral resolution of the system was 0.98?μm.
机译:在这项研究中,开发了一种多光学探针共聚焦成像系统的设计方法。为了开发具有所需分辨率和成像面积的成像系统,本研究着重于一种设计方法,以创建可扩展且易于实现的共聚焦成像系统。该系统克服了常规多光学探头共聚焦成像系统的光学复杂性以及使用由两个微透镜阵列和远心中继光学系统组成的微物镜模块的短工作距离的局限性。使用背面对准光刻和热回流工艺在玻璃基板上制造微物镜模块。为了检验所开发方法的可行性,设计并构建了一个光学系统,其分辨率为1?μm/像素,并使用了阵列尺寸为10?×?10的多光学探头。所开发的系统具有1?mm?×?1?mm的视场和100?μm的样品扫描范围。通过使用刀口检测方法进行样品测试来评估光学分辨率。测得的系统横向分辨率为0.98?μm。

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