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Separation of magnetic beads in a hybrid continuous flow microfluidic device

机译:混合连续流微流控设备中磁珠的分离

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摘要

Magnetic separation of biological entities in microfluidic environment is a key task for a large number of bio-analytical protocols. In magnetophoretic separation, biochemically functionalized magnetic beads are allowed to bind selectively to target analytes, which are then separated from the background stream using a suitably imposed magnetic field. Here we present a numerical study, characterizing the performance of a magnetophoretic hybrid microfluidic device having two inlets and three outlets for immunomagnetic isolation of three different species from a continuous flow. The hybrid device works on the principle of split-flow thin (SPLITT) fractionation and field flow fractionation (FFF) mechanisms. Transport of the magnetic particles in the microchannel has been predicted following an Eulerian-Lagrangian model and using an in-house numerical code. Influence of the salient geometrical parameters on the performance of the separator is studied by characterizing the particle trajectories and their capture and separation indices. Finally, optimum channel geometry is identified that yields the maximum capture efficiency and separation index.
机译:在微流体环境中对生物实体进行磁分离是许多生物分析方案的关键任务。在磁泳分离中,将生化功能化的磁珠选择性结合至目标分析物,然后使用适当施加的磁场将其与背景流分离。在这里,我们进行了一项数值研究,表征了具有两个入口和三个出口的磁热混合微流体装置的性能,该装置用于从连续流中免疫分离三种不同物质。混合设备基于分流稀(SPLITT)分级和场流分级(FFF)机制的原理工作。已经遵循欧拉-拉格朗日模型并使用内部数字代码预测了微通道中磁性颗粒的运输。通过表征颗粒轨迹及其捕获和分离指数,研究了突出的几何参数对分离器性能的影响。最终,确定最佳的通道几何形状,从而获得最大的捕获效率和分离指数。

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