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利用激光直写技术在纸基器件中实现工程流体延迟。

Engineering fluidic delays in paper-based devices using laser direct-writing.

作者信息

He P J W, Katis I N, Eason R W, Sones C L

机构信息

Optoelectronics Research Centre, University of Southampton, Highfield, Southampton, SO17 1BJ, UK.

出版信息

Lab Chip. 2015 Oct 21;15(20):4054-61. doi: 10.1039/c5lc00590f. Epub 2015 Sep 2.

Abstract

We report the use of a new laser-based direct-write technique that allows programmable and timed fluid delivery in channels within a paper substrate which enables implementation of multi-step analytical assays. The technique is based on laser-induced photo-polymerisation, and through adjustment of the laser writing parameters such as the laser power and scan speed we can control the depth and/or the porosity of hydrophobic barriers which, when fabricated in the fluid path, produce controllable fluid delay. We have patterned these flow delaying barriers at pre-defined locations in the fluidic channels using either a continuous wave laser at 405 nm, or a pulsed laser operating at 266 nm. Using this delay patterning protocol we generated flow delays spanning from a few minutes to over half an hour. Since the channels and flow delay barriers can be written via a common laser-writing process, this is a distinct improvement over other methods that require specialist operating environments, or custom-designed equipment. This technique can therefore be used for rapid fabrication of paper-based microfluidic devices that can perform single or multistep analytical assays.

摘要

我们报告了一种基于激光的新型直写技术的应用,该技术可在纸质基底内的通道中实现可编程且定时的流体输送,从而能够实施多步分析检测。该技术基于激光诱导光聚合,通过调整激光写入参数(如激光功率和扫描速度),我们可以控制疏水屏障的深度和/或孔隙率,当在流体路径中制造这些屏障时,会产生可控的流体延迟。我们使用405nm的连续波激光或266nm的脉冲激光,在流体通道中的预定义位置对这些流动延迟屏障进行了图案化。使用这种延迟图案化协议,我们产生了从几分钟到半个多小时不等的流动延迟。由于通道和流动延迟屏障可以通过共同的激光写入过程进行写入,这相对于其他需要特殊操作环境或定制设计设备的方法有了显著改进。因此,该技术可用于快速制造能够执行单步或多步分析检测的纸质微流控装置。

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