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Sheathless and high throughput sorting of paramagnetic microparticles in a magneto-hydrodynamic microfluidic device

机译:磁力流体动力学微流体装置中顺磁性微粒的护窝材和高通量分类

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Sorting of microorganisms and particles from a mixture is critical for numerous biotechnological and medical applications. Several sorting methods such as pinched flow fractionation (PFF), optical sorting, dielectrophoresis, acoustic separation, magnetophoresis and deterministic lateral displacement (DLD) have been reported in literature. But most of these methods lack ideal characteristics of a sorter such as ability to process at high throughput, simple design, non-complicated fabrication method, sheathless operation and high purity in separation. In this paper, we have introduced a novel sorting technique by integrating focusing of magnetic particles in a narrow microchannel with their hydrodynamic separation at a downstream expansion channel which meets majority of the aforementioned characteristics. To achieve this, the sheathless focusing of paramagnetic microparticles in the narrow microchannel and their deflection at the expansion channel were first studied at various flow rates (0.5-5 ml h-1). Then, a mixture of 5 and 11 μm paramagnetic particles was introduced into the device and their separation was examined quantitatively. It was found that the magnetic particles were focused along the wall of channel, however their centers were positioned on two distinct streamlines owing to difference in their sizes. Hence, these two particles were found separated from each other as they flew into the expansion region. This technique of size based separation of paramagnetic particles works at a high throughput of 107 particles per hour and offers more than 98% purity in sorting.
机译:从混合物中分选微生物和颗粒对于许多生物技术和医学应用至关重要。在文献中报道了几种分选方法,例如挤压流分馏(PFF),光学分选,电泳,声学分离,磁吸磷酸酯和确定性横向位移(DLD)。但大多数这些方法缺乏分拣机的理想特性,例如在高通量下处理的能力,简单的设计,不复杂的制造方法,护套操作和高纯度分离。在本文中,我们通过将磁性粒子聚焦在窄微通道中与其在下游膨胀通道的流体动力学分离中介绍了一种新的分选技术,其符合上述大部分特性。为此,首先以各种流速(0.5-5mL H-1)研究窄微通道中的顺磁微粒的护释微粒的护套聚焦及其在膨胀通道处的偏转。然后,将5和11μm顺磁性颗粒引入装置中的混合物,并定量检查它们的分离。发现磁性颗粒沿沟道壁聚焦,但由于其尺寸的差异,它们的中心定位在两个不同的流线上。因此,发现这两种颗粒在飞入膨胀区域时彼此分开。这种基于尺寸的顺磁性粒子的技术的技术在每小时107个颗粒的高通量下工作,并在分选中提供98%以上的纯度。

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