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Characterization of magnetic nanoparticles using programmed quadrupole magnetic field-flow fractionation

机译:使用程序化的四极磁场流分馏表征磁性纳米粒子

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Quadrupole magnetic field-flow fractionation is a relatively new technique for the separation and characterization of magnetic nanoparticles. Magnetic nanoparticles are often of composite nature having a magnetic component, which may be a very finely divided material, and a polymeric or other material coating that incorporates this magnetic material and stabilizes the particles in suspension. There may be other components such as antibodies on the surface for specific binding to biological cells, or chemotherapeutic drugs for magnetic drug delivery. Magnetic field-flow fractionation (MgFFF) has the potential for determining the distribution of the magnetic material among the particles in a given sample. MgFFF differs from most other forms of field-flow fractionation in that the magnetic field that brings about particle separation induces magnetic dipole moments in the nanoparticles, and these potentially can interact with one another and perturb the separation. This aspect is examined in the present work. Samples of magnetic nanoparticles were analysed under different experimental conditions to determine the sensitivity of the method to variation of conditions. The results are shown to be consistent and insensitive to conditions, although magnetite content appeared to be somewhat higher than expected.
机译:四极磁场流分离是一种相对较新的技术,用于分离和表征磁性纳米粒子。磁性纳米颗粒通常具有复合性质,具有磁性成分,该磁性成分可以是非常细分的材料,以及聚合物或其他材料涂层,其结合了该磁性材料并使颗粒稳定在悬浮液中。可能存在其他成分,例如表面上的抗体(用于特异性结合生物细胞)或化学治疗药物(用于磁性药物递送)。磁场流分级分离(MgFFF)具有确定给定样品中颗粒之间磁性材料分布的潜力。 MgFFF与大多数其他形式的场流分级分离的不同之处在于,引起粒子分离的磁场会在纳米粒子中感应出磁偶极矩,并且这些潜在的磁极矩可能相互影响并干扰分离。在本工作中将对此方面进行检查。在不同的实验条件下分析了磁性纳米颗粒样品,以确定该方法对条件变化的敏感性。尽管磁铁矿的含量似乎比预期的要高,但结果表明是一致的并且对条件不敏感。

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