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Adaptable acylindrical microlenses fabricated by femtosecond laser micromachining

机译:飞秒激光微加工制造的自适应圆柱微透镜

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Microfluidic lenses are a powerful tool for many lab on a chip applications ranging from sensing to detection and also to imaging purpose, with the great advantage to increase the degree of integration and compactness of these micro devices. In this work we present the realization of such a compact microfluidic lens with reconfigurable optical properties. The technique used to realize the device we present is femtosecond laser micromachining followed by chemical etching, which allows to easily fabricate 3D microfluidic devices with an arbitrary shape. Thanks to that it has been possible to easily fabricate different lens made up by cylindrical microchannel in fused silica glasses filled with liquids with a proper refractive index. The optical properties of these devices are tested and shown to be in a good agreement with the theoretical model previously implemented. Furthermore we have also optimized the design of these microlenses in order to reduce the effects of spherical aberrations in the focal region, thus allowing us to obtain a set of different acylindrical microfluidic lenses, whose validation is also reported. In this work the lens adaptability can be achieved by replacing the liquid inside the microchannel, so that we can easily tune the feature of the focused beam. Thus increasing the possible range of applications of these micro optical elements, as an example we report on the validation of the device as a fast integrated optofluidic shutter.
机译:微流体透镜是从传感到检测再到成像目的的许多芯片上实验室应用的强大工具,具有极大的优势,可以提高这些微型设备的集成度和紧凑性。在这项工作中,我们介绍了这种具有可重新配置的光学特性的紧凑型微流体透镜的实现。用于实现我们目前存在的设备的技术是飞秒激光微加工,然后进行化学蚀刻,这可以轻松地制造具有任意形状的3D微流体设备。因此,可以容易地在填充有具有适当折射率的液体的熔融石英玻璃中制造由圆柱形微通道组成的不同透镜。测试了这些设备的光学性能,并证明与先前实现的理论模型非常吻合。此外,我们还优化了这些微透镜的设计,以减少焦点区域中球差的影响,从而使我们能够获得一组不同的柱面微流控透镜,并进行了验证。在这项工作中,可以通过替换微通道内部的液体来实现镜头的适应性,这样我们就可以轻松地调整聚焦光束的特性。因此,增加了这些微光学元件的可能应用范围,例如,我们报告了该设备作为一种快速集成的光流体百叶窗的验证。

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