English

Dipolar Interaction and Sample Shape Effects on the Hysteresis Properties of 2d Array of Magnetic Nanoparticles

Materials Science 2021-11-02 v1

Abstract

We study the ground state and magnetic hysteresis properties of 2dd arrays (Lx×LyL^{}_x\times L^{}_y) of dipolar interacting magnetic nanoparticles (MNPs) by performing micromagnetic simulations. Our primary interest is to understand the effect of sample shape, Θ\Theta- the ratio of the dipolar strength to the anisotropy strength, and the direction of the applied field H=Hoe^H\vec{H} = H_{o}\hat{e}^{}_H on the ground state and the magnetic hysteresis in an array of MNPs. To study the effect of shape of the sample, we have varied the aspect ratio Ar=Ly/LxA^{}_r=L^{}_y/L^{}_x which in turn, is found to induce shape anisotropy in the system. Our main observations are: (a) When the dipolar interaction is strong (Θ>1)(\Theta>1), the ground state morphology has in-plane ordering of magnetic moments. (b) The ground state morphology has randomly oriented magnetic moments which is robust with respect to system sizes and ArA^{}_r for weakly interacting MNPs (Θ<1\Theta<1). (c) Micromagnetic simulations suggests that the dipolar interaction decreases the coercive field HcH^{}_c. (d) The remanence magnetization MrM^{}_r is found to be strongly dependent not only on the strength of dipolar interaction but also on the shape of the sample. (e) Due to anisotropic nature of dipolar interaction, a strong effect of shape anisotropy is observed when the field is applied along longer axis of the sample. The dipolar interaction in such a case induces an effective ferromagnetic coupling when the aspect ratio is very large. These results are of vital importance in high-density recording systems, magneto-impedance sensors, etc.

Keywords

Cite

@article{arxiv.2101.03356,
  title  = {Dipolar Interaction and Sample Shape Effects on the Hysteresis Properties of 2d Array of Magnetic Nanoparticles},
  author = {Manish Anand},
  journal= {arXiv preprint arXiv:2101.03356},
  year   = {2021}
}

Comments

22 Pages, 6 Figures