Magnetic domain engineering in antiferromagnetic CuMnAs and Mn$_2$Au devices
Abstract
Antiferromagnetic materials hold potential for use in spintronic devices with fast operation frequencies and field robustness. Despite the rapid progress in proof-of-principle functionality in recent years, there has been a notable lack of understanding of antiferromagnetic domain formation and manipulation, which translates to either incomplete or non-scalable control of the magnetic order. Here, we demonstrate simple and functional ways of influencing the domain structure in CuMnAs and Mn2Au, two key materials of antiferromagnetic spintronics research, using device patterning and strain engineering. Comparing x-ray microscopy data from two different materials, we reveal the key parameters dictating domain formation in antiferromagnetic devices and show how the non-trivial interaction of magnetostriction, substrate clamping and edge anisotropy leads to specific equilibrium domain configurations. More specifically, we observe that patterned edges have a significant impact on the magnetic anisotropy and domain structure over long distances, and we propose a theoretical model that relates short-range edge anisotropy and long-range magnetoelastic interactions. The principles invoked are of general applicability to the domain formation and engineering in antiferromagnetic thin films at large, which will pave the way towards realizing truly functional antiferromagnetic devices.
Keywords
Cite
@article{arxiv.2302.09550,
title = {Magnetic domain engineering in antiferromagnetic CuMnAs and Mn$_2$Au devices},
author = {Sonka Reimers and Olena Gomonay and Oliver J. Amin and Filip Krizek and Luke X. Barton Yaryna Lytvynenko and Stuart Poole and Richard P. Campion and Vit Novák and Francesco Maccherozzi and Dina Carbone and Alexander Björling and Yuran Niu and Evangelos Golias and Dominik Kriegner and Jairo Sinova and Mathias Kläui and Martin Jourdan and Sarnjeet S. Dhesi and Kevin W. Edmonds and Peter Wadley},
journal= {arXiv preprint arXiv:2302.09550},
year = {2023}
}
Comments
31 pages, 7 figures