Curvature-induced magnetic anisotropy in two-dimensional magnetic semiconductor CrSBr
Abstract
Curvature-induced anisotropy and effective Dzyaloshinskii–Moriya interaction (DMI) have a major impact on magnetism in curved geometries. Two-dimensional Van der Waals materials provide an ideal platform to study the effects of curvature on magnetic properties due to their flexibility. In this work, we use noncollinear-spin density functional theory (DFT) to study the magnetic properties of CrSBr as a function of curvature. We found that curvature drives a transition from a cycloidal magnetic state at higher curvatures to the azimuthal magnetization at lower curvatures, stabilized by an effective curvature-induced DMI. To explain this behavior, we apply a continuum model to distinguish the contributions from spin stiffness, anisotropy, and DMI strength, with parameters obtained from the DFT calculations. Our findings not only reveal that the curvature-induced DMI plays a crucial role in shaping the curvature-induced effective anisotropy but also highlight the crucial role of noncollinear-spin DFT in providing an accurate description of flexomagnetic coupling parameters.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (3)
Xin Zhang
Xiaofang Chen
Jingshan Qi
Tianjin Key Laboratory of Quantum Optics and Intelligent Photonics, School of Science, Tianjin University of Technology , Tianjin 300384,