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Magnetic Nanoparticle-Polyelectrolyte Interaction: A Layered Approach for Biomedical Applications

机译:磁性纳米粒子与电解质的相互作用:生物医学应用的分层方法。

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This study describes the surface modification of magnetic nanoparticles using two different approaches. The first approach consists of an in situ modification of the surface during the precipitation of the magnetic nanoparticles while the second approach consists of a post-modification of the surface after the formation of the magnetic nanoparticles. In the latter case, we adopted the Layer-by-Layer assembly of polyelectrolyte multilayers of poly(diallyl-dimethylammonium) chloride and poly(styrenesulfonate) to build a polymeric shell around the magnetic nanoparticle core, thereby intentionally conferring to this hybrid core-shell the same charge as the charge of the polyelectrolyte deposited in the last layer. Electrophoretic measurements reveal charge reversal indicating successful Layer-by-Layer deposition while magnetization studies show that the superparamagnetic behavior is not much affected by the presence of polyelectrolytes on the modified magnetic nanoparticles. Fourier transform infrared and thermogravimetry analysis results underline that the various polyelectrolytes employed, in both the methodologies adopted, were successfully bound to the nanoparticles.
机译:这项研究描述了使用两种不同方法对磁性纳米颗粒进行表面改性。第一种方法包括在磁性纳米颗粒的沉淀过程中对表面进行原位修饰,而第二种方法包括在磁性纳米颗粒形成后对表面进行后修饰。在后一种情况下,我们采用了聚(二烯丙基-二甲基铵)氯化物和聚(苯乙烯磺酸盐)的聚电解质多层结构的逐层组装,以在磁性纳米颗粒核周围构建聚合物壳,从而有意赋予这种杂化核-壳与沉积在最后一层的聚电解质的电荷相同。电泳测量表明电荷反转,表明成功进行了逐层沉积,而磁化研究表明,超顺磁行为受改性磁性纳米粒子上聚电解质的存在影响不大。傅里叶变换红外和热重分析结果表明,在两种采用的方法中,所采用的各种聚电解质均成功地与纳米颗粒结合。

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