Modeling magnetization reversal in multilayers with interlayer exchange coupling

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Wadge, Elliot, Terko, Afan, Lertzman-Lepofsky, George, Omelchenko, Paul, Heinrich, Bret, Rojas, Manuel, Girt, Erol
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866910585789087744
author Wadge, Elliot
Terko, Afan
Lertzman-Lepofsky, George
Omelchenko, Paul
Heinrich, Bret
Rojas, Manuel
Girt, Erol
author_facet Wadge, Elliot
Terko, Afan
Lertzman-Lepofsky, George
Omelchenko, Paul
Heinrich, Bret
Rojas, Manuel
Girt, Erol
contents Spin spirals form inside the magnetic layers of antiferromagnetic and noncollinearly-coupled magnetic multilayers in the presence of an external magnetic field. This spin structure can be modeled to extract the direct exchange stiffness of the magnetic layers and the strength of the interlayer exchange coupling across the spacer layer. In this article, we discuss three models to describe the evolution of the spin spiral with the strength of the external magnetic field in these coupled structures: discrete energy, discrete torque, and continuous torque. These models are expanded to accommodate multilayers with any number of ferromagnetic layers, any combination of material parameters, and asymmetry. We compare their performance when fitting to the measured magnetization data of a range of sputtered samples with one or multiple ferromagnetic layers on either side of the spacer. We find that the discrete models produce better fits than the continuous for asymmetric and multi-ferromagnetic structures and exhibit much better computational scaling with high numbers of atomic layers than the continuous model. For symmetric, single-layered structures, the continuous model produces the same fit statistics and outperforms the discrete models. Lastly, we demonstrate the methods by which one can use interfacial layers to measure the exchange stiffness of magnetic layers with low interlayer exchange coupling. An open-access website has been provided to allow the fitting of magnetization as a function of field in arbitrary coupled structures using the discrete energy model.
format Preprint
id arxiv_https___arxiv_org_abs_2408_16222
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Modeling magnetization reversal in multilayers with interlayer exchange coupling
Wadge, Elliot
Terko, Afan
Lertzman-Lepofsky, George
Omelchenko, Paul
Heinrich, Bret
Rojas, Manuel
Girt, Erol
Mesoscale and Nanoscale Physics
Spin spirals form inside the magnetic layers of antiferromagnetic and noncollinearly-coupled magnetic multilayers in the presence of an external magnetic field. This spin structure can be modeled to extract the direct exchange stiffness of the magnetic layers and the strength of the interlayer exchange coupling across the spacer layer. In this article, we discuss three models to describe the evolution of the spin spiral with the strength of the external magnetic field in these coupled structures: discrete energy, discrete torque, and continuous torque. These models are expanded to accommodate multilayers with any number of ferromagnetic layers, any combination of material parameters, and asymmetry. We compare their performance when fitting to the measured magnetization data of a range of sputtered samples with one or multiple ferromagnetic layers on either side of the spacer. We find that the discrete models produce better fits than the continuous for asymmetric and multi-ferromagnetic structures and exhibit much better computational scaling with high numbers of atomic layers than the continuous model. For symmetric, single-layered structures, the continuous model produces the same fit statistics and outperforms the discrete models. Lastly, we demonstrate the methods by which one can use interfacial layers to measure the exchange stiffness of magnetic layers with low interlayer exchange coupling. An open-access website has been provided to allow the fitting of magnetization as a function of field in arbitrary coupled structures using the discrete energy model.
title Modeling magnetization reversal in multilayers with interlayer exchange coupling
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2408.16222