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Exchange Coupling in Soft Magnetic Nanostructures and Its Direct Effect on Their Theranostic Properties

机译:软磁纳米结构中的交换耦合及其对其治疗性能的直接影响

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Exchange coupling between hard and soft magnetic materials at the nanoscale exhibits novel or improved physical properties for energy and data storage applications. Recently, exchange coupling has also been explored in core/shell magnetic nanostructures (MNS) composed of hard and soft magnetic spinel ferrites, but applications have been limited in biomedicine due to the presence of "toxic" cobalt based ferrites as hard magnetic component. We report core/shell MNS where both core and shell components are soft magnetic ferrites (Fe3O4, MnFe2O4, and Zn0.2Mn0.8Fe2O4) and show that exchange coupling still exists due to the difference in their anisotropy. The physical properties (saturation magnetization, susceptibility, anisotropy, r(2) relaxivity, and specific absorption rate) of core/shell MNS are compared with the same size single phase counterparts which excludes any size dependent effect and gives the direct effect of exchange coupling. After optimization of core and shell components and their proportions, we have shown that a core/shell MNS shows significantly higher contrast enhancement and thermal activation properties than their single phase counterparts due to exchange coupling between core and shell ferrites. Our finding provides a novel way to improve theranostic properties of spinel ferrite based MNS while maintaining their biocompatibility.
机译:纳米级硬磁性材料之间的交换耦合表现出用于能量和数据存储应用的新颖或改进的物理性质。最近,还在核心/壳磁纳米结构(MNS)中探索了交换耦合,其由硬磁尖晶石铁氧体组成,但由于存在“毒性”钴的铁氧体作为硬磁性成分,应用已经受到生物医学的限制。我们报告核心/壳牌MNS,其中核心和外壳组件都是软磁铁氧体(FE3O4,MNFE2O4和Zn0.2Mn0.8Fe2O4),并显示出由于它们各向异性的差异而仍存在交换耦合。将芯/壳MNS的物理性质(饱和磁化,敏感,各向异性,r(2)放松率和特定吸收率与相同尺寸的单相对应物进行比较,其排除任何尺寸依赖性效果并提供交换耦合的直接效果。在优化核心和壳体组分及其比例之后,我们已经表明,由于芯和壳铁氧体之间的交换耦合,核心/壳体MNS显示出比其单相位对应物显着更高的对比度增强和热激活性质。我们的发现提供了一种新的方法来提高基于尖晶石的MNS的尖晶石静脉性质,同时保持其生物相容性。

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