Topological magneto-optical Kerr effect without spin-orbit coupling in spin-compensated antiferromagnet

C Camron Farhang W Weihang Lu K Kai Du (State Key Laboratory of Materials Low-Carbon Recycling, College of Materials Science and Engineering) Y Yunpeng Gao J Junjie Yang S Sang-Wook Cheong J Jing Xia (Chinese Academy of Sciences , , ,)

Abstract

Abstract The magneto-optical Kerr effect (MOKE), the differential reflection of oppositely circularly polarized light, has traditionally been associated with relativistic spin-orbit coupling (SOC), which links a particle’s spin with its orbital motion. In ferromagnets, large MOKE signals arise from the combination of magnetization and SOC, while in certain coplanar antiferromagnets, SOC-induced Berry curvature enables MOKE despite zero net magnetization. Theoretically, large MOKE can also arise in a broader class of magnetic materials with compensated spins, without relying on SOC - for example, in systems exhibiting real-space scalar spin chirality. The experimental verification has remained elusive. Here, we demonstrate such a SOC- and magnetization-free MOKE in the noncoplanar antiferromagnet Co 1/3 TaS 2 . Using a Sagnac interferometer microscope, we image domains of scalar spin chirality and their reversal. Our findings establish experimentally a new mechanism for generating large MOKE signals and position chiral spin textures in compensated magnets as a compelling platform for ultrafast, stray-field-immune opto-spintronic applications.

Article Details

Volume / Issue Vol. 17, Issue 1
Published March 03, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (7)

C

Camron Farhang

W

Weihang Lu

K

Kai Du

State Key Laboratory of Materials Low-Carbon Recycling, College of Materials Science and Engineering

Y

Yunpeng Gao

J

Junjie Yang

S

Sang-Wook Cheong

J

Jing Xia

Chinese Academy of Sciences , , ,