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Optofluidic tunable microlens by manipulating the liquid meniscus using a flared microfluidic structure

机译:通过使用扩口微流控结构操纵液体弯月面来产生光控可调谐微透镜

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摘要

We have designed, demonstrated, and characterized a simple, novel in-plane tunable optofluidic microlens. The microlens is realized by utilizing the interface properties between two different fluids: CaCl2solution and air. A constant contact angle of ∼90° is the pivotal factor resulting in the outward bowing and convex shape of the CaCl2 solution-air interface. The contact angle at the CaCl2 solution-air interface is maintained by a flared structure in the polydimethylsiloxane channel. The resulting bowing interface, coupled with the refractive index difference between the two fluids, results in effective in-plane focusing. The versatility of such a design is confirmed by characterizing the intensity of a traced beam experimentally and comparing the observed focal points with those obtained via ray-tracing simulations. With the radius of curvature conveniently controlled via fluid injection, the resulting microlens has a readily tunable focal length. This ease of operation, outstandingly low fluid usage, large range tunable focal length, and in-plane focusing ability make this lens suitable for many potential lab-on-a-chip applications such as particle manipulation, flow cytometry, and in-plane optical trapping.
机译:我们已经设计,演示和表征了一种简单,新颖的面内可调光流微透镜。微透镜是通过利用两种不同流体(CaCl2溶液和空气)之间的界面特性来实现的。约90°的恒定接触角是导致CaCl2溶液-空气界面向外弯曲和凸出的关键因素。 CaCl 2溶液-空气界面处的接触角通过聚二甲基硅氧烷通道中的喇叭形结构保持。所产生的弯曲界面,再加上两种流体之间的折射率差,导致有效的面内聚焦。这种设计的多功能性是通过实验表征被跟踪光束的强度并将观察到的焦点与通过光线跟踪模拟获得的焦点进行比较来确认的。通过流体注入可方便地控制曲率半径,所得到的微透镜具有易于调节的焦距。这种易于操作,极低的流体使用量,大范围可调焦距和面内聚焦能力使该透镜适合许多潜在的芯片实验室应用,例如粒子处理,流式细胞术和面内光学诱捕。

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