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Quadrupole magnetic field-flow fractionation: A novel technique for the characterization of magnetic particles.

机译:四极磁场流分馏:一种表征磁性粒子的新颖技术。

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摘要

In the last few decades, the development and use of nanotechnology has become of increasing importance. Magnetic nanoparticles, because of their unique properties, have been employed in many different areas of application. They are generally made of a core of magnetic material coated with some other material to stabilize them and to help disperse them in suspension. The unique feature of magnetic nanoparticles is their response to a magnetic field. They are generally superparamagnetic, in which case they become magnetized only in a magnetic field and lose their magnetization when the field is removed. It is this feature that makes them so useful for drug targeting, hyperthermia and bioseparation. For many of these applications, the synthesis of uniformly sized magnetic nanoparticles is of key importance because their magnetic properties depend strongly on their dimensions. Because of the difficulty of synthesizing monodisperse particulate materials, a technique capable of characterizing the magnetic properties of polydisperse samples is of great importance.; Quadrupole magnetic field-flow fractionation (MgFFF) is a technique capable of fractionating magnetic particles based on their content of magnetite or other magnetic material. In MgFFF, the interplay of hydrodynamic and magnetic forces separates the particles as they are carried along a separation channel. Since the magnetic field and the gradient in magnetic field acting on the particles during their migration are known, it is possible to calculate the quantity of magnetic material in the particles according to their time of emergence at the channel outlet. Knowing the magnetic properties of the core material, MgFFF can be used to determine both the size distribution and the mean size of the magnetic cores of polydisperse samples. When magnetic material is distributed throughout the volume of the particles, the derived data corresponds to a distribution in equivalent spherical diameters of magnetic material in the particles. MgFFF is unique in its ability to characterize the distribution in magnetic properties of a particulate sample. This knowledge is not only of importance to the optimization and quality control of particle preparation. It is also of great importance in modeling magnetic cell separation, drug targeting, hyperthermia, and other areas of application.
机译:在过去的几十年中,纳米技术的开发和使用变得越来越重要。磁性纳米粒子由于其独特的性能,已在许多不同的应用领域中使用。它们通常由涂有其他材料的磁性材料制成,以使其稳定并有助于将其分散在悬浮液中。磁性纳米粒子的独特之处在于它们对磁场的响应。它们通常是超顺磁性的,在这种情况下,它们仅在磁场中被磁化,而在去除磁场时失去其磁化。正是这一功能使它们对于靶向药物,热疗和生物分离非常有用。对于这些应用中的许多应用而言,均匀大小的磁性纳米颗粒的合成至关重要,因为它们的磁性取决于其尺寸。由于合成单分散颗粒材料的困难,能够表征多分散样品的磁性的技术非常重要。四极磁场流分级分离(MgFFF)是一种能够根据磁铁矿或其他磁性材料的含量对磁性粒子进行分级的技术。在MgFFF中,流体动力和磁力的相互作用将颗粒沿着分离通道运送时将其分离。由于已知在粒子迁移过程中作用在粒子上的磁场和磁场梯度,因此可以根据粒子在通道出口处的出现时间来计算粒子中磁性材料的量。知道芯材料的磁性后,MgFFF可用于确定多分散样品磁芯的尺寸分布和平均尺寸。当磁性材料分布在整个粒子体积中时,导出的数据对应于粒子中磁性材料的等效球形直径分布。 MgFFF在表征颗粒样品的磁性能分布方面具有独特的能力。这些知识不仅对颗粒制备的优化和质量控制很重要。在建模磁性细胞分离,药物靶向,热疗和其他应用领域中,这也非常重要。

著录项

  • 作者

    Carpino, Francesca.;

  • 作者单位

    Cleveland State University.;

  • 授予单位 Cleveland State University.;
  • 学科 Chemistry Biochemistry.; Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;电磁学、电动力学;
  • 关键词

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