论文标题
Fe3O4纳米颗粒组件中的纳米级磁有序通过X射线
Unraveling nanoscale magnetic ordering in Fe3O4 nanoparticle assemblies via x-rays
论文作者
论文摘要
:了解磁性纳米颗粒之间的相关性对于纳米技术(例如高密度磁记录和生物医学应用)很重要,在这些纳米技术中,功能化磁性颗粒用作对比剂和药物输送。控制单个颗粒的磁态的能力取决于组装时颗粒之间磁相关的良好知识。通过标准磁力测定技术无法访问,Fe3O4纳米颗粒自组件中的纳米级磁有序在这里通过X射线谐振磁散射(XRMS)推出。在整个磁化过程中测量的XRMS信号揭示了尺寸依赖性的粒子间磁相关性。较小(5 nm)的颗粒几乎没有磁相关性,即使在不存在外场的情况下,也会屈服于磁性障碍,这是超级磁性行为的特征。相反,较大(11 nm)的颗粒倾向于密切相关,从而产生包括铁磁和抗铁磁性的磁性阶层的混合物。即使粒子分布稀疏,这些强磁相关也存在。
: Understanding the correlations between magnetic nanoparticles is important for nanotechnologies, such as high-density magnetic recording and biomedical applications, where functionalized magnetic particles are used as contrast agents and for drug delivery. The ability to control the magnetic state of individual particles depends on the good knowledge of magnetic correlations between particles when assembled. Inaccessible via standard magnetometry techniques, nanoscale magnetic ordering in self-assemblies of Fe3O4 nanoparticles is here unveiled via x-ray resonant magnetic scattering (XRMS). Measured throughout the magnetization process, the XRMS signal reveals size-dependent inter-particle magnetic correlations. Smaller (5 nm) particles show little magnetic correlation, even when tightly close-packed, yielding to mostly magnetic disorder in the absence of external field, which is characteristic of superparamagnetic behavior. In contrast, larger (11 nm) particles tend to be strongly correlated, yielding a mix of magnetic orders including ferromagnetic and anti-ferromagnetic orders. These strong magnetic correlations are present even when the particles are sparsely distributed.