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Optical two-beam trap in a polymer microfluidic chip

机译:聚合物微流控芯片中的光学两束阱

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An optical two-beam trap, composed from two counter propagating laser beams, is an interesting setup due to the ability of the system to trap, hold, and stretch soft biological objects like vesicles or single cells. Because of this functionality, the system was also named "the optical stretcher" by Jochen Guck, Josep Kas and co-workers some 15 years ago. In a favorable setup, the two opposing laser beams meet with equal intensities in the middle of a fluidic channel in which cells may flow past, be trapped, stretched, and allowed to move on, giving the promise of a high throughput device. Yet, single beam optical traps, aka optical tweezers, by far outnumber the existing optical stretchers in research labs throughout the world. The ability to easily construct an optical stretcher setup in a low-cost material would possibly imply more frequent use of the optical stretching technique. Here, we will outline the design, the production procedures, and results obtained in a fiber-based experimental setup built within an injection molded microfluidic polymer chip. The microfluidic chip is constructed with a three layer technology in which we ensure both horizontal and vertical focusing of the cells we wish to trap, thereby preventing too many cells to flow below the line of focus of the two counter propagating laser beams that are positioned perpendicular to the direction of flow of the cells. Results will be compared to that from other designs from previous work in the group.
机译:由两个反向传播的激光束组成的光学两光束阱是一种有趣的设置,因为该系统能够捕获,保持和拉伸囊泡或单个细胞等柔软的生物物体。由于此功能,大约15年前,该系统还被Jochen Guck,Josep Kas及其同事命名为“光学担架”。在有利的设置中,两个相对的激光束以相等的强度在流体通道的中部相遇,在该流体通道中,细胞可能流过,被捕获,拉伸并继续移动,从而有望实现高通量的设备。但是,单束光阱(又称光镊)远远超过了全世界研究实验室中现有的光学担架。在低成本材料中轻松构建光学拉伸机设置的能力可能暗示了光学拉伸技术的更频繁使用。在这里,我们将概述在注塑微流体聚合物芯片中建立的基于纤维的实验装置中的设计,生产程序和结果。微流控芯片采用三层技术构建,其中我们确保希望捕获的细胞在水平和垂直方向上聚焦,从而防止过多的细胞流向垂直放置的两个反向传播激光束的聚焦线以下朝向细胞流动的方向。将结果与小组先前工作中的其他设计进行比较。

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