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Two-dimensional flow magnetophoresis of microparticles

机译:微粒的二维流磁泳

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A new two-dimensional micro-flow magnetophoresis device was constructed in a superconducting magnet (10 T) using triangular shaped pole pieces, which could apply a magnetic strength, B(dB/dx), in the range of ca. 0-14,000 T ~2 m ~(-1) across a capillary cell. Polystyrene particles with diameters of 1, 3, and 6 μm were used as test samples in a paramagnetic medium of 1 M MnCl _2 to evaluate the performance of this method. Microparticles migrated across the capillary along the edge of the pole pieces, and then flowed through the gap in the pole piece at a position defined as the migration distance, depending on the magnetic susceptibility and the size of particles as well as the flow rate. The most effective flow rate to exhibit the largest resolution among the particleswas theoretically predicted and experimentally confirmed. By this method, the magnetic susceptibilities of individual deoxygenated and non-deoxygenated red blood cells were measured from the relative migration distance.
机译:使用三角形磁极片在超导磁体(10 T)中构造了一种新型的二维微流磁泳装置,该磁极装置可施加的磁强度B(dB / dx)约为ca。跨毛细管细胞0-14,000 T〜2 m〜(-1)。在1 M MnCl _2的顺磁性介质中,将直径为1、3和6μm的聚苯乙烯颗粒用作测试样品,以评估该方法的性能。微粒沿着磁极的边缘迁移穿过毛细管,然后流过磁极中的间隙,该距离取决于磁化率,粒子的大小以及流速,该距离定义为迁移距离。从理论上预测并实验确认了在颗粒中表现出最大分离度的最有效流速。通过这种方法,从相对迁移距离测量了各个脱氧和非脱氧红细胞的磁化率。

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