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Selective detection of volatile organic compounds in microfluidic gas detectors based on “like dissolves like”

机译:基于“类似溶解”的选择性检测微流气体检测仪中的挥发性有机化合物

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This paper studies the effect of channel coating hydrophobicity and analyte polarity on the gas detection capability of a microfluidic-based gas detector. Two detectors with two different channel surface coating combinations (resulting in different levels of hydrophobicity) are fabricated and tested against seven analytes with different polarities (methanol, ethanol, 1-propanol, 2-pentanol, acetone, pentane, and hexane). A feature extraction method is utilized to compare the discrimination capability of each of the fabricated detector. The analysis of the combined feature space presented for both detectors reveals that the Euclidean distance, which is an indicator of the device discrimination capability between different gases, between the feature vectors of the two sensors are greater for non-polar gases compared to those obtained for the polar ones. This shows that the analyte discrimination in microfluidic gas detectors is not a purely diffusion-based process, and there are analyte/channel surface interaction parameters involved in enhancing/impeding sensor selectivity. To understand these effects, the surface free energy of each fabricated channel was determined. It is shown that the difference between the solid-liquid surface tension values estimated for the two channel surfaces is higher for the non-polar analytes as compared to the polar analytes. This effect along with the low diffusion coefficients of non-polar analyte magnifies adsorption of the analytes in the diffusion-physisorption process, resulting in a greater difference in Euclidean distances between the features obtained from the two detectors responses against non-polar analytes as compared to the polar ones. This shows that the choice of the detector's channel coating material plays a key role in the selectivity of the device between different gases. As a result, non-polar channel coating surfaces are suggested for better classification of the non-polar gases, and it is shown in the cases of polar gases changing the coating surface has less effect.
机译:本文研究了通道涂层疏水性和分析物极性对基于微流体的气体检测器的气体检测能力的影响。制造了具有两种不同通道表面涂层组合(导致不同水平的疏水性)的两个检测器,并针对极性不同的七个分析物(甲醇,乙醇,1-丙醇,2-戊醇,丙酮,戊烷和己烷)进行了测试。利用特征提取方法来比较每个制造的探测器的辨别能力。对两个检测器的组合特征空间进行的分析表明,与非离子气体相比,非极性气体的两个传感器的特征矢量之间的欧几里德距离(表示不同气体之间的设备区分能力的指标)更大。极地的。这表明微流体气体检测器中的分析物判别不是纯粹基于扩散的过程,并且存在提高/阻碍传感器选择性的分析物/通道表面相互作用参数。为了理解这些影响,确定了每个预制通道的表面自由能。结果表明,与极性分析物相比,非极性分析物在两个通道表面估计的固液表面张力值之间的差异更大。与非极性分析物的低扩散系数一起产生的这种影响会放大分析物在扩散-物理吸附过程中的吸附,导致与非极性分析物相比,两个检测器对非极性分析物的响应所获得的特征之间的欧几里得距离差异更大。极地的。这表明,检测器通道涂层材料的选择对设备在不同气体之间的选择性起着关键作用。结果,提出了非极性通道涂层表面以更好地分类非极性气体,并且在极性气体的情况下表明改变涂层表面的作用较小。

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