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Capillary flow-driven microfluidic device with wettability gradient and sedimentation effects for blood plasma separation

机译:具有可湿性梯度和沉降作用的毛细管流动驱动微流体装置用于血浆分离

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摘要

We report a capillary flow-driven microfluidic device for blood-plasma separation that comprises a cylindrical well between a pair of bottom and top channels. Exposure of the well to oxygen-plasma creates wettability gradient on its inner surface with its ends hydrophilic and middle portion hydrophobic. Due to capillary action, sample blood self-infuses into bottom channel and rises up the well. Separation of plasma occurs at the hydrophobic patch due to formation of a ‘self-built-in filter’ and sedimentation. Capillary velocity is predicted using a model and validated using experimental data. Sedimentation of RBCs is explained using modified Steinour’s model and correlation between settling velocity and liquid concentration is found. Variation of contact angle on inner surface of the well is characterized and effects of well diameter and height and dilution ratio on plasma separation rate are investigated. With a well of 1.0 mm diameter and 4.0 mm height, 2.0 μl of plasma was obtained (from <10 μl whole blood) in 15 min with a purification efficiency of 99.9%. Detection of glucose was demonstrated with the plasma obtained. Wetting property of channels was maintained by storing in DI water under vacuum and performance of the device was found to be unaffected over three weeks.
机译:我们报告了用于血浆分离的毛细管流驱动微流控设备,该设备包括一对底部和顶部通道之间的圆柱孔。将孔暴露于氧等离子体中,在其内表面上产生润湿性梯度,其末端为亲水性而中间部分为疏水性。由于毛细作用,样本血液会自动注入底部通道并上升到井中。由于“内置过滤器”的形成和沉淀,在疏水膜上发生了血浆分离。使用模型预测毛细管速度,并使用实验数据进行验证。使用改进的Steinour模型解释了RBC的沉淀,并发现了沉降速度与液体浓度之间的相关性。表征了孔内表面的接触角的变化,并研究了孔的直径和高度以及稀释比对血浆分离率的影响。通过直径为1.0毫米的孔和高度为4.0毫米的孔,可以在15分钟内(从<10微升全血中)获得2.0微升血浆(纯化效率为99.9%)。用获得的血浆证明了葡萄糖的检测。通过在真空中储存在去离子水中来维持通道的润湿性,发现该装置的性能在三周内未受影响。

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