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An integrated gas-liquid droplet microfluidic platform for digital sampling and detection of airborne targets

机译:集成的气-液微滴微流控平台,用于对机载目标进行数字采样和检测

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The use of microfluidic droplets has become ubiquitous in many Lab-on-a-Chip (LOC) applications ranging from material synthesis to novel biochemical sensing. In this paper, we introduce a new droplet-based approach that incorporates a gas phase for generating liquid droplet microreactors in a microfluidic flow-focusing format. We demonstrate the subsequent on-chip transition, collection and handling of the droplets in a secondary liquid carrier inside a multilayer PDMS structure. The presented technique has potential applications in capturing and probing airborne particles and gaseous vapors using high surface-to-volume picoliter droplets. The discrete microfluidic gas-liquid interfaces created in this approach, greatly facilitate absorption and up-concentration of a gaseous target analyte into the droplet volume. The chip-based format of the units also allows for different microfluidic modules and analytical techniques to be integrated in this platform for droplet probing, providing highly-sensitive LOC detection systems. Here, we demonstrate the basic principles of sample partitioning with gas-liquid droplets by capturing and detection of vaporized ammonia at different gaseous concentrations using Nessler’s reaction inside the droplets. The results of this work provide a simple and robust quantification approach for determining gaseous ammonia which can be further expanded to other gas-phase analytes in next generation of airborne target detectors for human breath analysis and environmental monitoring.
机译:从材料合成到新颖的生化传感,在许多芯片实验室(LOC)应用中,微流体液滴的使用已变得无处不在。在本文中,我们介绍了一种新的基于液滴的方法,该方法结合了气相,以微流体流聚焦形式生成液滴微反应器。我们展示了后续的片上过渡,多层PDMS结构内部二级液体载体中液滴的收集和处理。所提出的技术在使用高表面体积的微微升液滴捕获和探测空气中的颗粒和气态蒸气方面具有潜在的应用。用这种方法产生的离散的微流体气-液界面极大地促进了气态目标分析物在液滴体积中的吸收和浓缩。单元的基于芯片的格式还允许将不同的微流体模块和分析技术集成到该平台中,以进行液滴探测,从而提供高度灵敏的LOC检测系统。在这里,我们通过使用液滴内的Nessler反应捕获和检测不同气态浓度的汽化氨来演示用气液液滴分配样品的基本原理。这项工作的结果为确定气态氨提供了一种简单而强大的定量方法,该气态氨可在下一代用于人呼吸分析和环境监测的空中目标检测器中进一步扩展为其他气相分析物。

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