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Multilayered Microfluidic Paper-Based Devices: Characterization, Modeling, and Perspectives

机译:基于多层的微流体纸张:特征,建模和观点

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摘要

Microfluidic paper-based analytical devices (mu PADs) are simple but powerful analytical tools that are gaining significant recent attention due to their many advantages over more traditional monitoring tools. These include being inexpensive, portable, pump free, and having the ability to store reagents. One major limitation of these devices is slow flow rates, which are controlled by capillary action in the hydrophilic pores of cellulosic paper. Recent investigations have advanced the flow rates in mu PADs through the generation of a gap or channel between two closely spaced paper sheets. This multilayered format has opened up mu PADs to new applications and detection schemes, where large gap sizes (>300 mu m) provide at least 169X faster flow rates than single-layer mu PADs, but do not conform to established mathematical models for fluid transport in porous materials, such as the classic Lucas-Washburn equation. In the present study, experimental investigations and analytical modeling are applied to elucidate the driving forces behind the rapid flow rates in these devices. We investigate a range of hypotheses for the systems fluid dynamics and establish a theoretical model to predict the flow rate in multilayered mu PADs that takes into account viscous dissipation within the paper. Device orientation, sample addition method, and the gap height are found to be critical concerns when modeling the imbibition in multilayered devices.
机译:基于微流体纸的分析装置(MU PADS)是简单但强大的分析工具,由于它们对更传统的监测工具的许多优点,因此近期近期关注。这些包括便宜,便携式,无泵,并具有存储试剂的能力。这些装置的一个主要限制是缓慢的流速,其由纤维素纸中的亲水孔中的毛细作用控制。最近的调查通过在两个紧密间隔的纸张之间产生间隙或通道,在MU PAD中提出了流量速率。这种多层格式向新的应用和检测方案打开了MU垫,其中大的间隙尺寸(>300μm)提供比单层μ垫更快的流速,但不符合建立的流体运输数学模型在多孔材料中,如经典的卢卡斯卫生盆方程。在本研究中,应用实验研究和分析建模,以阐明这些装置中快速流速后的驱动力。我们研究了系统流体动力学的一系列假设,并建立了理论模型,以预测多层MU垫中的流速,该模型考虑了纸张内的粘性耗散。当在多层设备中建模利用时,发现设备方向,样品添加方法和间隙高度是关键问题。

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