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经两股层流调谐的光流棱镜。

An optofluidic prism tuned by two laminar flows.

机构信息

School of Electrical and Electronic Engineering, Nanyang Technological University, Singapore.

出版信息

Lab Chip. 2011 Jun 7;11(11):1864-9. doi: 10.1039/c1lc20180h. Epub 2011 Mar 29.

Abstract

This paper presents a tunable optofluidic prism based on the configuration of two laminar flow streams with different refractive indices in a triangular chamber. The chambers with 70° and 90° apex angles are designed based on simulation results, which provide the optimum working range and avoid recirculating flows in the chambers. In addition, a hydrodynamic model has been developed to predict the tuning of the prisms by the variation in the flow rates. Prisms with different refractive indices are realized using benzyl alcohol and deionized (DI) water as the inner liquids, respectively. The mixture of ethylene glycol and DI water with an effective refractive index matched to that of the microchannel is used as the outer liquid. The apex angle of the prism is tuned from 75° to 135° by adjusting the ratio of the two flow rates. Subsequently, the deviation angle of the output light beam is tuned from -13.5° to 22°. One of the new features of this optofluidic prism is its capability to transform from a symmetric to an asymmetric prism with the assistance of a third flow. Two optical behaviours have been performed using the optofluidic prism. First, parallel light beam scanning is achieved with a constant deviation angle of 10° and a tuning range of 60 μm using the asymmetric prism. The detected output light intensity is increased by 65.7%. Second, light dispersion is experimentally demonstrated using 488-nm and 633-nm laser beams. The two laser beams become distinguishable with a deviation angle difference of 2.5° when the apex angle of the prism reaches 116°.

摘要

本文提出了一种基于具有不同折射率的两层层流在三角形腔室内配置的可调谐光流体棱镜。根据模拟结果设计了具有 70°和 90°顶角的腔室,该腔室提供了最佳工作范围并避免了腔室内的回流。此外,还开发了一个流体动力学模型来通过流速的变化来预测棱镜的调谐。使用苄醇和去离子(DI)水分别作为内液体来实现具有不同折射率的棱镜。将 DI 水与乙二醇的混合物用作具有与微通道相匹配的有效折射率的外液体。通过调整两种流速的比例,将棱镜的顶角从 75°调谐到 135°。随后,通过调整两种流速的比例,将输出光束的偏转角从-13.5°调谐到 22°。这种光流体棱镜的一个新特点是它能够在第三流的辅助下从对称棱镜转变为非对称棱镜。使用光流体棱镜实现了两种光学行为。首先,使用非对称棱镜实现了具有 10°恒定偏转角和 60μm 调谐范围的平行光束扫描。检测到的输出光强度增加了 65.7%。其次,使用 488nm 和 633nm 激光束实验演示了光色散。当棱镜的顶角达到 116°时,两个激光束的偏转角差为 2.5°,变得可区分。

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