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Density-gradient-assisted centrifugal microfluidics: an approach to continuous-mode particle separation

机译:密度梯度辅助离心微流控:连续模式颗粒分离的一种方法

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Centrifugal microfluidics has been recognized as a promising pumping method in microfluidics because of its simplicity, easiness of automation, and parallel processing. However, the patterning of stripe flow in centrifugal microfluidics is challenging because a fluid is significantly affected by the Coriolis force, which produces an intrinsic secondary flow. This paper reports a technical and design strategy for centrifugal microfluidics called "density-gradient-assisted centrifugal microfluidics." The flow behavior is observed with the presence of a density gradient and without a density gradient in two concentrically traveling phase flows. As a result, clear stripe flow pattern is observed with a density difference of 0.05 g/cm(3) between water and a percoll solution at a flow rate of 11.8 mu l/s (7 ml/10 min) and spinning speed of 3000 rpm. In contrast, without a density gradient, it is necessary to reduce the flow rate and spinning speed to 0.1 mu l/s and 1000 rpm, respectively. This paper also presents the use of a density gradient to assist in focusing resin (polystyrene) particles on the boundary of a stripe flow pattern that consists of water and percoll with different densities. Moreover, the density-based separation and sorting of particles in a mixed particle suspension is demonstrated. Polystyrene is selectively focused on the boundary, but silica particles are separated from the focused trajectory due to a difference in density. The separated particles are continuously sorted into different reservoirs with polystyrene and silica separation efficiencies of 96.5% and 98.5%, respectively. The pumping, stripe flow pattern formation, particle concentration, and sorting are simultaneously realized by applying a density gradient and centrifugal force. Therefore, this principle can realize a very simple technique for label-free particle separation by just spinning a disk device and can be applied in other applications by the use of the density-gradient assistance.
机译:离心微流体技术因其简单性,自动化的简便性和并行处理而被公认为微流体技术中一种有前途的泵送方法。然而,在离心微流体中,条带流的图案化具有挑战性,因为流体会受到科氏力的显着影响,这会产生固有的二次流。本文报告了一种称为“密度梯度辅助离心微流体”的离心微流体技术和设计策略。在两个同心传播的相流中,在存在密度梯度且没有密度梯度的情况下观察到了流动行为。结果,观察到清晰的条状流型,水和percoll溶液之间的密度差为0.05 g / cm(3),流速为11.8μl/ s(7 ml / 10 min),旋转速度为3000转速相反,在没有密度梯度的情况下,需要将流速和纺丝速度分别降低至0.1μl/ s和1000rpm。本文还介绍了密度梯度的使用,以帮助将树脂(聚苯乙烯)颗粒聚焦在由不同密度的水和percoll组成的条状流动模式的边界上。另外,对混合粒子悬浮液中的粒子的基于密度的分离和分选进行了说明。聚苯乙烯选择性地聚焦在边界上,但由于密度差异,二氧化硅颗粒从聚焦轨迹中分离出来。将分离出的颗粒连续分选到不同的容器中,聚苯乙烯和二氧化硅的分离效率分别为96.5%和98.5%。通过施加密度梯度和离心力,可同时实现泵送,条带流模式形成,颗粒浓度和分选。因此,该原理仅通过旋转盘装置就可以实现非常简单的无标签颗粒分离技术,并且可以通过使用密度梯度辅助技术而应用于其他应用。

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