English

Strain-driven domain wall network with chiral junctions in an antiferromagnet

Mesoscale and Nanoscale Physics 2026-01-05 v1 Materials Science

Abstract

Materials with antiferromagnetic order have recently emerged as promising candidates in spintronics based on their beneficial characteristics such as vanishing stray fields and ultra-fast dynamics. At the same time more complex localized non-coplanar magnetic states as for instance skyrmions are in the focus of applications due to their intriguing properties such as the topological Hall effect. Recently a conceptual shift has occurred to envision the use of such magnetic defects not only in one-dimensional race track devices but to exploit their unique properties in two-dimensional networks. Here we use local strain in a collinear antiferromagnet to induce non-coplanar domain wall junctions, which connect in a very specific way to form extended networks. We combine spin-polarized scanning tunneling microscopy with density functional theory to characterize the different building blocks of the network, and unravel the origin of the handedness of triple-junctions and the size of the arising topological orbital moments.

Keywords

Cite

@article{arxiv.2408.12580,
  title  = {Strain-driven domain wall network with chiral junctions in an antiferromagnet},
  author = {Vishesh Saxena and Mara Gutzeit and Arturo Rodríguez-Sota and Soumyajyoti Haldar and Felix Zahner and Roland Wiesendanger and André Kubetzka and Stefan Heinze and Kirsten von Bergmann},
  journal= {arXiv preprint arXiv:2408.12580},
  year   = {2026}
}

Comments

Marie Sk{\l}odowska-Curie Actions, H2020-MSCA-ITN-2020; Project acronym SPEAR; Grant Agreement No. 955671

R2 v1 2026-06-28T18:21:08.083Z