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Determination of Nanocrystal Size Distribution in Magnetic Multicore Particles Including Dipole-Dipole Interactions and Magnetic Anisotropy: a Monte Carlo Study

机译:磁性多核颗粒中纳米晶体尺寸分布的测定,包括偶极偶极相互作用和磁各向异性:蒙特卡罗研究

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A correct estimate of the size distribution (i.e., median diameter D and geometric standard deviation a) of the magnetic nanocrystals (MNCs) embedded in magnetic multicore particles is a necessity in most applications relying on the magnetic response of these particles. In this paper we use a Monte Carlo method to simulate the equilibrium magnetization of two types of multicore particles: (I) MNCs fused in a random compact cluster, and (II) MNCs distributed on the surface of a large carrier sphere. The simulated magnetization data are then fitted using a common method based on a Langevin equation weighted with a size distribution function. Finally, the fitting parameters D_m and σ_m are compared to the real parameters D_p and σ_p used to generate the MNCs. Our results show that fitting magnetization data with a Langevin model that neglects magnetic anisotropy and dipole-dipole interactions leads to an erroneous estimate of the size distribution of the MNCs in multicore particles. The magnitude of the error depends on the particle morphology, number of MNCs contained in the particle and magnetic properties of the MNCs.
机译:在磁性多核颗粒中嵌入磁性纳米晶体(MNC)的尺寸分布(即,中值D和几何标准A)的正确估计是依赖于这些颗粒的磁响应的大多数应用中的必要性。在本文中,我们使用蒙特卡罗方法来模拟两种类型的多核颗粒的平衡磁化,在随机紧凑簇中融合的MNC,以及分布在大载体球体的表面上的MNC。然后使用基于具有尺寸分布函数的LangeVin公式的常用方法配合模拟磁化数据。最后,将拟合参数d_m和σ_m与用于生成MNC的实际参数d_p和σ_p进行比较。我们的结果表明,拟合磁化数据与疏忽磁各向异性和偶极子 - 偶极相互作用的Langevin模型导致MNC在多核颗粒中尺寸分布的错误估计。误差的幅度取决于颗粒形态,颗粒形态,含有MNC的颗粒和磁性的MNC数。

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