Direct imaging of a Berry curvature nematic state in a spin-compensated magnet

Fuente: arXiv
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Autores principales: Lu, Weihang, Farhang, Camron, Yao, Yuchuan, Pal, Pratap, Zhang, Hao, Han, Shaofeng, Lin, Shi-Zeng, Eom, Chang-Beom, Xia, Jing
Formato: Preprint
Publicado: 2026
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author Lu, Weihang
Farhang, Camron
Yao, Yuchuan
Pal, Pratap
Zhang, Hao
Han, Shaofeng
Lin, Shi-Zeng
Eom, Chang-Beom
Xia, Jing
author_facet Lu, Weihang
Farhang, Camron
Yao, Yuchuan
Pal, Pratap
Zhang, Hao
Han, Shaofeng
Lin, Shi-Zeng
Eom, Chang-Beom
Xia, Jing
contents Density waves conventionally describe the periodic modulation of charge or spin, yet the spatial modulation of electronic geometry has remained elusive. Here, we report subtle micrometer-scale spatial modulations of the magneto-optical Kerr signal in the noncollinear antiferromagnet Mn3NiN with compensated spins, consistent with a magnetic-field-induced Berry curvature density wave . These Berry curvature modulations exhibit orientations unpinned from the crystal lattice, forming a nematic state that spontaneously breaks rotational symmetry. We attribute this spatial instability to field-induced spatial variations of the spin texture driven by competing magnetic interactions. This discovery unveils a new class of collective order in spin-compensated magnets mediated by the geometric phase of the wavefunction itself. Its wavelength is controlled by chemical doping and its amplitude by magnetic field, providing concrete tuning knobs for antiferromagnetic and altermagnetic spintronics.
format Preprint
id arxiv_https___arxiv_org_abs_2602_17872
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Direct imaging of a Berry curvature nematic state in a spin-compensated magnet
Lu, Weihang
Farhang, Camron
Yao, Yuchuan
Pal, Pratap
Zhang, Hao
Han, Shaofeng
Lin, Shi-Zeng
Eom, Chang-Beom
Xia, Jing
Strongly Correlated Electrons
Mesoscale and Nanoscale Physics
Optics
Density waves conventionally describe the periodic modulation of charge or spin, yet the spatial modulation of electronic geometry has remained elusive. Here, we report subtle micrometer-scale spatial modulations of the magneto-optical Kerr signal in the noncollinear antiferromagnet Mn3NiN with compensated spins, consistent with a magnetic-field-induced Berry curvature density wave . These Berry curvature modulations exhibit orientations unpinned from the crystal lattice, forming a nematic state that spontaneously breaks rotational symmetry. We attribute this spatial instability to field-induced spatial variations of the spin texture driven by competing magnetic interactions. This discovery unveils a new class of collective order in spin-compensated magnets mediated by the geometric phase of the wavefunction itself. Its wavelength is controlled by chemical doping and its amplitude by magnetic field, providing concrete tuning knobs for antiferromagnetic and altermagnetic spintronics.
title Direct imaging of a Berry curvature nematic state in a spin-compensated magnet
topic Strongly Correlated Electrons
Mesoscale and Nanoscale Physics
Optics
url https://arxiv.org/abs/2602.17872