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Microstructure and magnetic properties of magnetic fluids consisting of shifted dipole particles under the influence of an external magnetic field

机译:在外部磁场的影响下,由偶极子粒子组成的磁流体的微观结构和磁性

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摘要

We investigate the structure of a recently proposed magnetic fluid consisting of shifted dipolar (SD) particles in an externally applied magnetic field via computer simulations. For standard dipolar fluids the applied magnetic field usually enhances the dipole-dipole correlations and facilitates chain formation whereas in the present system the effect of an external field can result in a break-up of clusters. We thoroughly investigate the origin of this phenomenon through analyzing first the ground states of the SD-particle systems as a function of an applied field. In a second step we quantify the microstructure of these systems as functions of the shift parameter, the effective interaction parameter, and the applied magnetic field strength. We conclude the paper by showing that with the proper choice of parameters, it is possible to create a system of SD-particles with highly interacting magnetic particles, whose initial susceptibility is below the Langevin susceptibility, and which remains spatially isotropic even in a very strong external magnetic field.
机译:我们通过计算机模拟研究了一种在外部施加的磁场中由移位偶极(SD)粒子组成的最近提出的磁流体的结构。对于标准偶极流体,所施加的磁场通常会增强偶极-偶极子的相关性并促进链的形成,而在本系统中,外场的作用会导致团簇的破裂。我们首先通过分析SD粒子系统的基态作为外加电场的函数来彻底研究这种现象的起源。在第二步中,我们根据位移参数,有效相互作用参数和施加的磁场强度对这些系统的微观结构进行了量化。通过总结得出本文的结论,即通过正确选择参数,可以创建具有高度相互作用的磁性粒子的SD粒子系统,该系统的初始磁化率低于Langevin磁化率,即使在非常强的磁场下也保持空间各向同性外部磁场。

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