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Exploiting Size-Dependent Drag and Magnetic Forces for Size-Specific Separation of Magnetic Nanoparticles

机译:利用尺寸相关的阻力和磁力来分离磁性纳米粒子。

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摘要

Realizing the full potential of magnetic nanoparticles (MNPs) in nanomedicine requires the optimization of their physical and chemical properties. Elucidation of the effects of these properties on clinical diagnostic or therapeutic properties, however, requires the synthesis or purification of homogenous samples, which has proved to be difficult. While initial simulations indicated that size-selective separation could be achieved by flowing magnetic nanoparticles through a magnetic field, subsequent in vitro experiments were unable to reproduce the predicted results. Magnetic field-flow fractionation, however, was found to be an effective method for the separation of polydisperse suspensions of iron oxide nanoparticles with diameters greater than 20 nm. While similar methods have been used to separate magnetic nanoparticles before, no previous work has been done with magnetic nanoparticles between 20 and 200 nm. Both transmission electron microscopy (TEM) and dynamic light scattering (DLS) analysis were used to confirm the size of the MNPs. Further development of this work could lead to MNPs with the narrow size distributions necessary for their in vitro and in vivo optimization.
机译:要在纳米医学中充分发挥磁性纳米颗粒(MNP)的潜力,需要对其物理和化学性质进行优化。但是,要阐明这些特性对临床诊断或治疗特性的影响,需要合成或纯化同质样品,事实证明这很困难。虽然最初的模拟表明可以通过使磁性纳米粒子流过磁场来实现尺寸选择分离,但随后的体外实验无法重现预测结果。然而,发现磁场流分级分离是分离直径大于20nm的氧化铁纳米颗粒的多分散悬浮液的有效方法。尽管以前已经使用类似的方法来分离磁性纳米颗粒,但是以前没有对20到200 nm之间的磁性纳米颗粒做过任何工作。透射电子显微镜(TEM)和动态光散射(DLS)分析均用于确认MNP的大小。这项工作的进一步发展可能会导致MNP在体内和体外的优化过程中具有狭窄的尺寸分布。

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