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基于折叠式纸张致动器条带选择性润湿的纸微流控快速可重构流量开关。

A fast, reconfigurable flow switch for paper microfluidics based on selective wetting of folded paper actuator strips.

机构信息

Department of Electrical and Computer Engineering, Iowa State University, Ames, IA 50011, USA.

出版信息

Lab Chip. 2017 Oct 25;17(21):3621-3633. doi: 10.1039/c7lc00620a.

Abstract

In paper microfluidics, the development of smart and versatile switches is critical for the regulation of fluid flow across multiple channels. Past approaches in creating switches are limited by long response times, large actuation fluid volumes, and use of external control circuitry. We seek to mitigate these difficulties through the development of a unique actuator device made entirely out of chromatography paper and incorporated with folds. Selective wetting of the fold with an actuation fluid, either at the crest or trough, serves to raise or lower the actuator's tip and thus engage or break the fluidic contact between channels. Here the actuator's response time is dramatically reduced (within two seconds from wetting) and a very small volume of actuation fluid is consumed (four microliters). Using this actuation principle, we implement six switch configurations which can be grouped as single-pole single-throw (normally OFF and normally ON) and single-pole double-throw (with single and double break). By employing six actuators in parallel, an autonomous colorimetric assay is built to detect the presence of three analytes - glucose, protein, and nitrite - in artificial saliva. Finally, this work brings the concept of origami to paper microfluidics where multiple-fold geometries can be exploited for programmable switching of fluidic connections.

摘要

在纸基微流控中,开发智能且多功能的开关对于调节多个通道中的流体流动至关重要。过去的开关设计方法受到响应时间长、驱动流体体积大以及需要外部控制电路等因素的限制。我们通过开发一种独特的由全纸质和褶皱构成的执行器装置来解决这些困难。通过在褶皱处选择性地润湿驱动流体(在波峰或波谷处),可以抬起或降低执行器的尖端,从而实现或断开通道之间的流体接触。在这里,执行器的响应时间大大缩短(润湿后两秒内),并且仅消耗少量的驱动流体(四微升)。利用这种驱动原理,我们实现了六种开关配置,可以分为单刀单掷(常关和常开)和单刀双掷(单断和双断)。通过将六个执行器并行使用,构建了一个自主比色分析来检测人工唾液中三种分析物 - 葡萄糖、蛋白质和亚硝酸盐 - 的存在。最后,这项工作将折纸的概念引入到纸基微流控中,可以利用多折几何形状实现流体连接的可编程切换。

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