Effects of antiferromagnetic coupling and pinning on domain wall dynamics in synthetic ferrimagnets

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Mallick, Sougata, Reyren, Nicolas, Thiaville, André, Ohresser, Philippe, Jaouen, Nicolas, Cros, Vincent, Jeudy, Vincent
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913693095165952
author Mallick, Sougata
Reyren, Nicolas
Thiaville, André
Ohresser, Philippe
Jaouen, Nicolas
Cros, Vincent
Jeudy, Vincent
author_facet Mallick, Sougata
Reyren, Nicolas
Thiaville, André
Ohresser, Philippe
Jaouen, Nicolas
Cros, Vincent
Jeudy, Vincent
contents Domain wall (DW) dynamics in antiferromagnetic (AFM) systems offer the advantages over their ferromagnetic counterparts of having faster and more energy efficient manipulation due to the absence of net magnetization, leading to reduced magnetic crosstalk and improved performance in spintronic devices. A comprehensive analysis of DW dynamics across regimes such as creep, depinning, and flow is well established in ferromagnetic systems but remains lacking in AFM-coupled systems. In this study, we explore the nature of DW dynamics in synthetic ferrimagnetic multilayers composed of Pt|Co|Tb|Al for different Tb thickness, focusing on the underlying pinning parameters, and on the different regimes of DW dynamics driven by spin-orbit torques (SOTs). We find that due to the AFM coupling between Co and Tb, the magnetic moment of Tb increases with Tb thickness resulting in a reduced saturation magnetization and an enhanced depinning field. The DW disorder interaction is found to vary weakly with the AFM coupling between Co and Tb, while the complete withdrawal of the Tb layer strongly increases the anisotropy and the DW pinning. Furthermore, we propose a novel approach to measure effective SOTs by comparing depinning transitions in current and field-induced DW motion. This research reveals new insights into DW dynamics in coupled AFM systems, highlighting enhancements in mobility through optimized SOTs and pinning landscapes.
format Preprint
id arxiv_https___arxiv_org_abs_2502_11621
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Effects of antiferromagnetic coupling and pinning on domain wall dynamics in synthetic ferrimagnets
Mallick, Sougata
Reyren, Nicolas
Thiaville, André
Ohresser, Philippe
Jaouen, Nicolas
Cros, Vincent
Jeudy, Vincent
Other Condensed Matter
Domain wall (DW) dynamics in antiferromagnetic (AFM) systems offer the advantages over their ferromagnetic counterparts of having faster and more energy efficient manipulation due to the absence of net magnetization, leading to reduced magnetic crosstalk and improved performance in spintronic devices. A comprehensive analysis of DW dynamics across regimes such as creep, depinning, and flow is well established in ferromagnetic systems but remains lacking in AFM-coupled systems. In this study, we explore the nature of DW dynamics in synthetic ferrimagnetic multilayers composed of Pt|Co|Tb|Al for different Tb thickness, focusing on the underlying pinning parameters, and on the different regimes of DW dynamics driven by spin-orbit torques (SOTs). We find that due to the AFM coupling between Co and Tb, the magnetic moment of Tb increases with Tb thickness resulting in a reduced saturation magnetization and an enhanced depinning field. The DW disorder interaction is found to vary weakly with the AFM coupling between Co and Tb, while the complete withdrawal of the Tb layer strongly increases the anisotropy and the DW pinning. Furthermore, we propose a novel approach to measure effective SOTs by comparing depinning transitions in current and field-induced DW motion. This research reveals new insights into DW dynamics in coupled AFM systems, highlighting enhancements in mobility through optimized SOTs and pinning landscapes.
title Effects of antiferromagnetic coupling and pinning on domain wall dynamics in synthetic ferrimagnets
topic Other Condensed Matter
url https://arxiv.org/abs/2502.11621