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首页> 外文期刊>Lab on a chip >Capillary driven low-cost V-groove microfluidic device with high sample transport efficiency
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Capillary driven low-cost V-groove microfluidic device with high sample transport efficiency

机译:毛细管驱动的低成本V型槽微流控装置,具有高样品传输效率

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In this study we investigate the liquid sample delivery speed and the efficiency of microfluidic channels for low-cost and low-volume diagnostic devices driven only by capillary forces. We select open, non-porous surface grooves with a V-shaped cross section for modeling study and for sensor design. Our experimental data of liquid wicking in V-grooves show an excellent agreement with the theoretical data from the V-groove model of Rye et al. This agreement allows us to quantitatively analyze the liquid wicking speed in V-grooves. This analysis is used to generate data for the design of sensors. By combining V-groove channels and printable paper-like porous detection zones, microfluidic diagnostic sensors can be formed. Non-porous V-grooves can be fabricated easily on polymer film. Suitably long surface V-grooves allow short liquid transport time (< 500 ms), thus reducing the evaporation loss of the sample during transport. Non-porous V-grooves also significantly reduce chromatographic loss of the sample during transport, therefore increasing the sample delivering efficiency. Sensors of such design are capable of conducting semi-quantitative chemical and biochemical analysis (i.e. with a calibration curve) with less than 1000 nL of sample and indicator solution in total.
机译:在这项研究中,我们调查了仅由毛细作用力驱动的低成本和小体积诊断设备的液体样品输送速度和微流体通道的效率。我们选择具有V形横截面的开放,无孔表面凹槽,以进行建模研究和传感器设计。我们的V型槽中液体芯吸的实验数据与Rye等人的V型槽模型的理论数据非常吻合。该协议使我们能够定量分析V型槽中的液体芯吸速度。该分析用于生成用于传感器设计的数据。通过组合V形槽通道和可打印的纸状多孔检测区域,可以形成微流诊断传感器。无孔V型槽可以在聚合物薄膜上轻松制造。适当的长V型槽表面可以缩短液体运输时间(<500 ms),从而减少了运输过程中样品的蒸发损失。无孔V型槽还可以显着减少样品在运输过程中的色谱损失,从而提高了样品的输送效率。这种设计的传感器能​​够进行总数量少于1000 nL的样品和指示剂溶液的半定量化学和生化分析(即具有校准曲线)。

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