Published 2021 | Version v1
Journal article

Dipolar interaction and sample shape effects on the hysteresis properties of 2d array of magnetic nanoparticles

Creators

  • 1. Department of Physics, Bihar National College, Patna University, Patna 800 004 (India)

Description

We study the ground-state and magnetic hysteresis properties of 2d arrays (Lx × L y) of dipolar interacting magnetic nanoparticles (MNPs) by performing micromagnetic simulations. Our primary interest is to understand the effect of sample shape, , the ratio of the dipolar strength to the anisotropy strength and the direction of the applied field H-bar = H0êH on the ground state and the magnetic hysteresis in an array of MNPs. To study the effect of the shape of the sample, we have varied the aspect ratio Ar = Ly/Lx , 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), the ground-state morphology has an in-plane ordering of magnetic moments, (b) the ground-state morphology has randomly oriented magnetic moments that are robust regarding system sizes and Ar for weakly interacting MNPs (Θ < 1), (c) micromagnetic simulations suggest that the dipolar interaction decreases the coercive field Hc, (d) the remanence magnetisation Mr is found to be strongly dependent not only on the strength of dipolar interaction but also on the shape of the sample and (e) due to the anisotropic nature of dipolar interaction, a strong shape anisotropy effect is observed when the field is applied along the long axis of the sample. In such a case, the dipolar interaction induces an effective ferromagnetic coupling when the aspect ratio is enormous. These results are of vital importance in high-density recording systems, magneto-impedance sensors, etc. (author)

Additional details

Identifiers

Publishing Information

Journal Title
Pramana
Journal Volume
95
Series
Article ID 0181
Journal Page Range
[9 p.]
CODEN
PRAMCI

INIS

Country of Publication
India
Country of Input or Organization
India
INIS RN
52118628
Subject category
S77: NANOSCIENCE AND NANOTECHNOLOGY;
Descriptors DEI
ENERGY LOSSES; HYSTERESIS; INTERNAL FRICTION; MAGNETIC DIPOLES; NANOMATERIALS; NANOPARTICLES
Descriptors DEC
DIPOLES; FRICTION; LOSSES; MATERIALS; MULTIPOLES; PARTICLES