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Design Considerations for Reducing Sample Loss in Microfluidic Paper-Based Analytical Devices

机译:减少基于微流纸的分析设​​备中样品损失的设计注意事项

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摘要

The field of microfluidic paper-based analytical devices (μPADs) is most notably characterized by portable and low-cost analysis; however, struggles to achieve the high sensitivity and low detection limits needs required for many environmental applications hinder widespread adoption of this technology. Loss of analyte to the device material represents an important problem impacting sensitivity. Critically, we found that at least 50% of a Ni(II) sample is lost when being transported down a 30 mm paper channel that is representative of structures commonly found in μPADs. In this work, we report simple strategies such as adding a waste zone, enlarging the detection zone, and using an elution step to increase device performance. A μPAD combining the best performing functionalities led to a 78% increase in maximum signal and a 28% increase in sensitivity when transporting Ni(II) samples. Using the optimized μPAD also led to a 94% increase in maximum signal for Mn(II) samples showing these modifications can be applied more generally.
机译:基于微流体纸质分析设备(μPAD)的领域最显着的特点是便携式和低成本分析。但是,为达到许多环境应用所需的高灵敏度和低检测限的要求而进行的努力阻碍了该技术的广泛采用。分析物丢失到器件材料中是影响灵敏度的重要问题。至关重要的是,我们发现当沿着30 mm的纸通道向下运输时,至少有50%的Ni(II)样品丢失,该通道代表了μPAD中常见的结构。在这项工作中,我们报告了一些简单的策略,例如添加废物区,扩大检测区以及使用洗脱步骤来提高设备性能。当运输Ni(II)样品时,结合了最佳性能的μPAD可使最大信号增加78%,灵敏度提高28%。使用优化的μPAD还可以使Mn(II)样品的最大信号增加94%,表明可以更普遍地应用这些修饰。

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