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An Integrated 2-D Active Optical Fiber Manipulator With Microfluidic Channel for Optical Trapping and Manipulation

机译:具有微流通道的集成式二维有源光纤操纵器,用于光学陷波和操纵

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We report a new two-axis active optical fiber manipulator for on-chip optical manipulation and detection in microfluidic environment. The system comprising of air chambers, fiber channels, controllable moving walls, and membrane structures were fabricated by using microelectromechanical systems technology. By adjusting air pressures to control the deflection of the pneumatic chambers placed orthogonal to and underneath the fiber channels, accurate alignment of a pair of approximately coaxial optical fibers, which was indicated by maximizing fiber-to-fiber optical-coupling measured in real time, has been achieved. A maximum displacement of a buried fiber as large as 13 $muhbox{m}$ at an applied pressure of 40 $hbox{lb}/hbox{in}^{2}$ for one air chamber has been demonstrated. It was sufficient to accurately align two approximately coaxial optical fibers to maximize the optical coupling efficiency. The maximum coupling efficiency for two single-mode optical fibers facing each other at a distance of 200 $muhbox{m}$ was measured to be 4.1%. The following features have been successfully demonstrated with this system: 1) stable optical trapping and stretching of a single red blood cell; 2) stable optical trapping of multiple microparticles; 3) optically driven controlled motion of single and multiple microparticles; and 4) integration of a counterpropagating dual-beam trap with single-beam optical tweezers. In addition to optical trapping and manipulation, the proposed device is promising for applications requiring coaxial input/output fibers for in-line optical analysis. Furthermore, it can be easily integrated with other microfluidic devices such as microcapillary electrophoresis channels or microflow cytometers for DNA, protein, and cell analysis. $hfill$[2007-0182]
机译:我们报告了一种新型的两轴有源光纤操纵器,用于微流体环境中的片上光学操纵和检测。该系统由气室,纤维通道,可控移动壁和膜结构组成,是使用微机电系统技术制造的。通过调节气压以控制与光纤通道正交并位于光纤通道下方的气动腔的偏转,可以通过实时测量光纤与光纤之间的最大耦合来指示一对大致同轴的光纤的精确对准,已经实现。已经证明,对于一个气室,在施加压力为40 $ hbox {lb} / hbox {in} ^ {2} $的情况下,埋入纤维的最大位移为13 $ muhbox {m} $。准确地对准两个大致同轴的光纤足以最大化光耦合效率。相对的两个单模光纤相距200 muh {m} $的最大耦合效率测得为4.1%。该系统已成功证明了以下特征:1)稳定的光学捕获和拉伸单个红细胞; 2)稳定的多个微粒的光学捕获; 3)单个和多个微粒的光学驱动受控运动; 4)将反向传播的双光束陷阱与单光束光学镊子集成在一起。除了光学陷波和操纵外,该器件还有望用于需要同轴输入/输出光纤进行在线光学分析的应用。此外,它可以很容易地与其他微流控设备集成在一起,例如微毛细管电泳通道或用于DNA,蛋白质和细胞分析的微流式细胞仪。 $ hfill $ [2007-0182]

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