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Hybrid Paper-Plastic Microchip for Flexible and High-Performance Point-of-Care Diagnostics.用于灵活且高性能即时诊断的纸质-塑料混合微芯片
Adv Funct Mater. 2018 Jun 27;28(26). doi: 10.1002/adfm.201707161. Epub 2018 Apr 25.
2
Versatile and Robust Integrated Sensors To Locally Assess Humidity Changes in Fully Enclosed Paper-Based Devices.通用且坚固的集成传感器,用于局部评估全封闭纸质设备中的湿度变化。
ACS Appl Mater Interfaces. 2018 Oct 17;10(41):35631-35638. doi: 10.1021/acsami.8b12780. Epub 2018 Oct 8.
3
Experimental Measurement of Parameters Governing Flow Rates and Partial Saturation in Paper-Based Microfluidic Devices.基于纸张的微流控设备中控制流速和部分饱和度的参数的实验测量。
Langmuir. 2018 Jul 31;34(30):8758-8766. doi: 10.1021/acs.langmuir.8b01345. Epub 2018 Jul 18.
4
Paper Capillary Enables Effective Sampling for Microfluidic Paper Analytical Devices.纸毛细管实现微流控纸基分析器件的有效采样。
ACS Sens. 2018 Jul 27;3(7):1416-1423. doi: 10.1021/acssensors.8b00335. Epub 2018 Jun 20.
5
A vertical flow paper-microarray assay with isothermal DNA amplification for detection of Neisseria meningitidis.一种基于垂直流纸微阵列和等温 DNA 扩增的脑膜炎奈瑟菌检测方法。
Talanta. 2018 Jun 1;183:192-200. doi: 10.1016/j.talanta.2018.02.070. Epub 2018 Feb 16.
6
Rapid flow in multilayer microfluidic paper-based analytical devices.多层微流控纸基分析器件中的快速流动。
Lab Chip. 2018 Feb 27;18(5):793-802. doi: 10.1039/c7lc01300k.
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Toward practical application of paper-based microfluidics for medical diagnostics: state-of-the-art and challenges.迈向用于医学诊断的基于纸张的微流控技术的实际应用:现状和挑战。
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Anal Chem. 2017 Jan 3;89(1):71-91. doi: 10.1021/acs.analchem.6b04581. Epub 2016 Dec 12.

多层微流控纸基器件:特性分析、建模及展望。

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

出版信息

Anal Chem. 2019 Jul 16;91(14):8966-8972. doi: 10.1021/acs.analchem.9b01112. Epub 2019 Jul 5.

DOI:10.1021/acs.analchem.9b01112
PMID:31276368
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7653499/
Abstract

Microfluidic paper-based analytical devices (μPADs) 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 μPADs through the generation of a gap or channel between two closely spaced paper sheets. This multilayered format has opened up μPADs to new applications and detection schemes, where large gap sizes (>300 μm) provide at least 169× faster flow rates than single-layer μPADs, 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 μPADs 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.

摘要

微流控纸基分析器件(μPADs)是一种简单而强大的分析工具,由于其具有比传统监测工具更多的优势,因此近年来受到了广泛关注。这些优势包括价格低廉、便携、无泵和能够储存试剂。这些器件的一个主要限制是流速较慢,这是由纤维素纸的亲水性孔中的毛细作用控制的。最近的研究通过在两张紧密间隔的纸之间产生间隙或通道来提高 μPADs 的流速。这种多层结构使 μPADs 能够应用于新的检测方案,其中较大的间隙尺寸(>300μm)提供的流速比单层 μPADs 至少快 169 倍,但不符合多孔材料中流体传输的经典数学模型,例如经典的 Lucas-Washburn 方程。在本研究中,实验研究和分析建模被应用于阐明这些器件中快速流速的驱动力。我们研究了一系列针对系统流体动力学的假设,并建立了一个理论模型来预测多层 μPADs 中的流速,该模型考虑了纸张内的粘性耗散。在对多层器件的吸液进行建模时,发现器件的取向、样品添加方法和间隙高度是关键问题。