Effect of dipolar interactions on the magnetization of a cubic array of nanomagnets
Marisol Alcantara Ortigoza, Richard A. Klemm, and Talat S. Rahman

TL;DR
This study explores how dipolar interactions influence magnetization and hysteresis in a 3D array of nanomagnets, revealing the significant role of damping, temperature, and lattice parameters in magnetic behavior.
Contribution
It provides a detailed numerical analysis of dipolar effects on nanomagnet arrays, including the impact of damping, temperature, and anisotropy, and compares 3D and 2D systems.
Findings
Lower damping constant increases hysteresis maximum induction.
Decreasing sweep rate reduces hysteresis loop size.
Dipolar interactions significantly affect magnetization dynamics.
Abstract
We investigated the effect of intermolecular dipolar interactions on a cubic 3D ensemble of 5X5X4=100 nanomagnets, each with spin . We employed the Landau-Lifshitz-Gilbert equation to solve for the magnetization curves for several values of the damping constant , the induction sweep rate, the lattice constant , the temperature , and the magnetic anisotropy field . We find that the smaller the , the stronger the maximum induction required to produce hysteresis. The shape of the hysteresis loops also depends on the damping constant. We find further that the system magnetizes and demagnetizes at decreasing magnetic field strengths with decreasing sweep rates, resulting in smaller hysteresis loops. Variations of within realistic values (1.5 nm - 2.5 nm) show that the dipolar interaction plays an important role in the magnetic hysteresis by…
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