Radushnov Dmitriy I, Solovyova Anna Yu, Elfimova Ekaterina A
Ural Federal University, 51 Lenin Avenue, 620000 Ekaterinburg, Russian Federation.
Nanoscale. 2022 Jul 28;14(29):10493-10505. doi: 10.1039/d2nr02605h.
This work is devoted to the theoretical study of the structural and magnetic properties of an ensemble of single-domain interacting magnetic nanoparticles immobilized in a non-magnetic medium. This model is typical for describing magnetically active soft materials, "smart" polymer ferrocomposites, which have been applied in science-intensive industrial and biomedical technologies. It is assumed that the ferrocomposite is obtained by solidification of the carrier medium in a ferrofluid under an external magnetic field, the intensity of which is determined by the Langevin parameter ; after the solidification of the carrier liquid, the nanoparticles retain the spatial distribution and orientation of their easy magnetization axes. The features of the orientational texture formed in the sample are analyzed depending on the intensity of the magnetic field and interparticle dipole-dipole interactions. The magnetization of a textured ferrocomposite in the magnetic field is also investigated. Our results show that in the case of a co-directional arrangement of the considered fields and if < , the ferrocomposites are magnetized much more efficiently than ferrofluids due to their texture. In the fields > , the ferrocomposite is magnetized less efficiently than the ferrofluid due to the internal magnetic anisotropy of the nanoparticles. The analytical expressions presented here make it possible to predict the magnetization of a ferrocomposite depending on its internal structure and synthesis conditions, which is the theoretical basis for the synthesis of ferrocomposites with a predetermined magnetic response in a given magnetic field.
这项工作致力于对固定在非磁性介质中的单畴相互作用磁性纳米粒子集合体的结构和磁性进行理论研究。该模型是描述磁活性软材料、“智能”聚合物铁磁复合材料的典型模型,这些材料已应用于科技密集型工业和生物医学技术中。假设铁磁复合材料是通过在外部磁场作用下,载体介质在铁磁流体中凝固而获得的,外部磁场强度由朗之万参数决定;载体液体凝固后,纳米粒子保留其易磁化轴的空间分布和取向。根据磁场强度和粒子间偶极 - 偶极相互作用,分析了样品中形成的取向织构的特征。还研究了织构化铁磁复合材料在磁场中的磁化情况。我们的结果表明,在所考虑的场同向排列且(<)的情况下,由于其织构,铁磁复合材料比铁磁流体磁化效率更高。在(>)的场中,由于纳米粒子的内部磁各向异性,铁磁复合材料的磁化效率低于铁磁流体。这里给出的解析表达式使得根据铁磁复合材料的内部结构和合成条件预测其磁化成为可能,这是在给定磁场中合成具有预定磁响应的铁磁复合材料的理论基础。