Uncovering domain morphology in an unconventional magnet with scanning diamond quantum magnetometry

Fuente: arXiv
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Main Authors: Johnson, Freya, Zemen, Jan, Knowles, Helena, Cohen, Lesley F.
Format: Preprint
Published: 2025
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author Johnson, Freya
Zemen, Jan
Knowles, Helena
Cohen, Lesley F.
author_facet Johnson, Freya
Zemen, Jan
Knowles, Helena
Cohen, Lesley F.
contents Unconventional magnetic materials including non-collinear antiferromagnets, p-wave magnets and altermagnets, are an emerging frontier for quantum spintronics and hybrid quantum devices. Critical to the application of these materials is control over the magnetic domain state, as their unique, symmetry-driven properties vanish in a multi-domain limit. However, the mechanisms governing domain formation in materials with compensated local moments remain poorly understood. In this work, we examine the ferrimagnetic to non-collinear antiferromagnetic phase transition of Mn3NiN using scanning nitrogen-vacancy centre magnetometry. We provide nanoscale mapping of the magnetic domain evolution on cooling and correlate the local stray fields with global magnetometry and anomalous Hall effect measurements. We observe the formation of a disordered, dendritic domain structure whose roughness is quantified using its fractal dimension. The fractal dimension steadily increases on cooling through the transition, saturating at a value of ~ 1.55 in the non-collinear phase, but the domain area distribution does not show any significant changes. We show this behaviour cannot be explained by the balance of demagnetisation energy and domain wall energy, and conclude elastic contributions and defects are a critical factor to explain the domain size.
format Preprint
id arxiv_https___arxiv_org_abs_2510_06895
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Uncovering domain morphology in an unconventional magnet with scanning diamond quantum magnetometry
Johnson, Freya
Zemen, Jan
Knowles, Helena
Cohen, Lesley F.
Materials Science
Unconventional magnetic materials including non-collinear antiferromagnets, p-wave magnets and altermagnets, are an emerging frontier for quantum spintronics and hybrid quantum devices. Critical to the application of these materials is control over the magnetic domain state, as their unique, symmetry-driven properties vanish in a multi-domain limit. However, the mechanisms governing domain formation in materials with compensated local moments remain poorly understood. In this work, we examine the ferrimagnetic to non-collinear antiferromagnetic phase transition of Mn3NiN using scanning nitrogen-vacancy centre magnetometry. We provide nanoscale mapping of the magnetic domain evolution on cooling and correlate the local stray fields with global magnetometry and anomalous Hall effect measurements. We observe the formation of a disordered, dendritic domain structure whose roughness is quantified using its fractal dimension. The fractal dimension steadily increases on cooling through the transition, saturating at a value of ~ 1.55 in the non-collinear phase, but the domain area distribution does not show any significant changes. We show this behaviour cannot be explained by the balance of demagnetisation energy and domain wall energy, and conclude elastic contributions and defects are a critical factor to explain the domain size.
title Uncovering domain morphology in an unconventional magnet with scanning diamond quantum magnetometry
topic Materials Science
url https://arxiv.org/abs/2510.06895