Magnetic Order and Symmetry in the 2D Semiconductor CrSBr
Kihong Lee, Avalon H. Dismukes, Evan J. Telford, Ren A. Wiscons,, Xiaodong Xu, Colin Nuckolls, Cory R. Dean, Xavier Roy, Xiaoyang Zhu

TL;DR
This study uses second harmonic generation to investigate the magnetic structure of CrSBr, a new 2D magnetic semiconductor, revealing ferromagnetic order in monolayers and antiferromagnetic coupling in multilayers, with unique symmetry properties.
Contribution
It demonstrates the application of SHG to determine magnetic symmetry and order in CrSBr, a novel 2D magnetic material, highlighting its distinct magnetic structure and moments.
Findings
CrSBr monolayers are ferromagnetically ordered below 146 K.
Multilayers exhibit antiferromagnetic coupling with increasing Ne9el temperature.
SHG reveals magnetic dipole and toroidal moments in different magnetic states.
Abstract
The recent discovery of two-dimensional (2D) magnets offers unique opportunities for the experimental exploration of low-dimensional magnetism4 and the magnetic proximity effects, and for the development of novel magnetoelectric, magnetooptic and spintronic devices. These advancements call for 2D materials with diverse magnetic structures as well as effective probes for their magnetic symmetries, which is key to understanding intralayer magnetic order and interlayer magnetic coupling. Here we apply second harmonic generation (SHG), a technique acutely sensitive to symmetry breaking, to probe the magnetic structure of a new 2D magnetic semiconductor, CrSBr. We find that CrSBr monolayers are ferromagnetically ordered below 146 K, an observation enabled by the discovery of a giant magnetic dipole SHG effect in the centrosymmetric 2D structure. In multilayers, the ferromagnetic monolayers…
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