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On-Chip Microfluidic Separation of Biological Entities in Field Flow Fractionation and Split Flow Thin Fractionation Devices

机译:现场流动分馏和分裂流薄分馏装置中生物实体的片上微流体分离

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Selective separation of biological entities in microfluidic environment is an important task for a large number of bio-analytical protocols. Here we present a numerical study characterizing magnetophoretic split-flow thin (SPLITT) fractionation and compare its performance against field flow fractionation (FFF) in a microfluidic separation device. Particle trajectories in the microchannel under influence of a suitably designed magnetic field have been predicted by using an indigenous numerical code. A three-inlet and three-outlet micro-channel design configuration has been chosen for isolation of magnetic microspheres of two different sizes from a continuous flow. The configuration is chosen as a practicable option for simultaneous separation of two different biological entities from the background media. Parametric variation involving the particle size and relative widths of the outlet streams are carried out to observe the resulting influence on trajectories of magnetic beads and the particle capture and separation indices. Finally, an optimum regime of design parameter is identified that yields the maximum capture efficiency and separation index.
机译:微流体环境中的生物实体的选择性分离是大量生物分析方案的重要任务。在这里,我们提出了一种表征磁体分流薄(SPLIT)分级的数值研究,并将其对微流体分离装置中的场流分馏(FFF)的性能进行比较。通过使用本土数值代码预测了在适当设计的磁场影响下的微通道中的粒子轨迹。选择了三进出和三出口微通道设计配置,用于从连续流动中分离两种不同尺寸的磁性微球。选择配置作为可行的选项,用于从背景介质中同时分离两个不同的生物实体。进行参数变形,涉及出口流的粒度和相对宽度,以观察结果对磁珠轨迹的影响和颗粒捕获和分离索引。最后,鉴定了设计参数的最佳制度,从而产生最大捕获效率和分离指数。

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