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Experimental Analysis of Fabrication Parameters in the Development of Microfluidic Paper-Based Analytical Devices (µPADs)

机译:基于微流体纸质分析设备(µPADs)开发中制造参数的实验分析

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摘要

Microfluidic paper-based analytical devices (µPADs) have emerged as viable multiplexable platforms with the potential to transcend existing analytical techniques in resource-limited settings. µPADs are fabricated by patterning hydrophobic materials on hydrophilic paper. Reproducibility in fabrication is essential in a myriad of applications and particularly, in the development of point-of-care (POC) diagnostic devices that utilize paper-based platforms. A critical step in fabrication involves the wax heating process that determines the channel dimensions and the depth at which hydrophobic wax material permeates paper to create barriers. In this paper, we assess µPAD viability by examining two fabrication parameters that affect wax ink spreading and permeation using a commercial heat press: temperature and time of heating. Analysis of the µPADs revealed that functional chips could be fabricated at temperatures between 143 and 215 °C and time of heating between 50 and 135 s, while non-functioning chips were obtained at temperatures between 76 and 140 °C and time of heating between 5 and 45 s. Wax ink spread and permeated paper consistently between 143 and 215 °C. Also shown is a simple three dimensional (3D) microfluidic channel fabricated in a single sheet of cellulose paper utilizing the fabrication conditions described herein. This work demonstrates that controlling the extent of wax printing in the fabrication process of a µPAD can yield versatile and interesting devices for use in both resource-rich and -limited settings.
机译:基于微流体纸质的分析设备(µPAD)已成为可行的可复用平台,并有望在资源有限的环境中超越现有的分析技术。 µPAD通过在亲水性纸上对疏水性材料进行构图来制造。在众多应用中,尤其是在开发利用纸质平台的即时诊断(POC)诊断设备方面,制造的可重复性至关重要。制造过程中的关键步骤涉及蜡加热过程,该过程决定了通道尺寸和疏水性蜡材料渗透纸以形成屏障的深度。在本文中,我们通过使用商业热压机检查影响蜡墨散布和渗透的两个制造参数来评估µPAD的可行性:温度和加热时间。对µPAD的分析表明,可以在143至215°C的温度和50至135 s的加热时间下制造功能芯片,而在76至140°C的温度和5的加热时间下获得非功能芯片和45 s。蜡油在143至215°C之间始终散布和渗透着纸张。还示出了利用本文所述的制造条件在单张纤维素纸中制造的简单的三维(3D)微流体通道。这项工作表明,在µPAD的制造过程中控制蜡的印刷程度可以生产出多种多样且有趣的设备,可用于资源丰富和资源有限的场合。

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