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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Continuous separation of magnetic beads using a Y-shaped microfluidic system integrated with hard-magnetic elements
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Continuous separation of magnetic beads using a Y-shaped microfluidic system integrated with hard-magnetic elements

机译:使用与硬磁性元件一体化的Y形微流体系统连续分离磁珠

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摘要

A Y-shaped microfluidic separator with an array of hard-magnetic elements integrated in a non-magnetic substrate is designed to realize continuous separation of magnetic beads under an external bias field. By fixing the magnetization directions of the hard-magnetic elements parallel to the wall of microchannel, the spatial distribution of the magnetic field can be adjusted by the geometrical size of elements, the gap between two neighboring elements, and the direction of the external bias field. In this work, magnetic beads comprising of multiple magnetic/superparamagnetic nanoparticles (10?nm Fe5Si3, Fe3Si or Fe3O4) in polymer matrixes are used. Herein, Kelvin force on the magnetic bead is described by treating each magnetized superparamagnetic nanoparticle as an equivalent magnetic dipole. With the closed-form Kelvin force, a two-way model that takes bead-fluid interaction into account is adopted to investigate the trajectories of magnetic beads in our Y-shaped microfluidic system. Using the two-way model, the influence of the beads? size, the direction of the external bias field, the magnetic bead concentration and the bead-fluid interaction on the trajectories of magnetic beads is also investigated. 100% collection or separation efficiency can be realized just by adjusting inlet velocities. In addition, it is theoretically demonstrated that two kinds of magnetic beads with small size difference (down to 100?nm) can be successfully separated by using our Y-shaped microfluidic separator.
机译:具有集成在非磁性基板中的硬磁性元件阵列的Y形微流体分离器旨在实现在外部偏置场下的磁珠的连续分离。通过固定与微通道壁平行的硬磁元件的磁化方向,可以通过元素的几何尺寸,两个相邻元件之间的间隙和外部偏置场的方向来调节磁场的空间分布。在该作品中,使用包含在聚合物基质中的多个磁性/超顺磁性纳米颗粒(10·NM Fe5Si3,Fe3Si或Fe3O4)的磁珠。这里,通过将各磁化的超顺磁性纳米颗粒作为当量磁性偶极液来描述磁珠上的开尔文力。通过封闭式开尔文力,采用了一种将珠粒流体相互作用的双向模型考虑在Y形微流体系统中磁珠的轨迹。使用双向模型,珠子的影响?还研究了外部偏置场的方向,磁珠浓度和磁珠轨迹上的磁珠浓度和珠粒流体相互作用。只需调整入口速度即可实现100%的收集或分离效率。此外,理论上,通过使用我们的Y形微流体分离器,理论上可以证明具有小尺寸差异(下降至100μm)的两种磁珠(下降至100Ω)。

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