Prediction of low-Z collinear and noncollinear antiferromagnetic compounds having momentum-dependent spin splitting even without spin-orbit coupling
Lin-Ding Yuan, Zhi Wang, Jun-Wei Luo, Alex Zunger

TL;DR
This paper develops symmetry-based design principles and an inverse design approach to identify low-Z antiferromagnetic compounds with SOC-independent spin splitting, expanding the potential material base for spintronics applications.
Contribution
It introduces a systematic symmetry framework and inverse design methodology to discover new antiferromagnetic materials exhibiting SOC-independent spin splitting.
Findings
422 magnetic space groups can host SOC-independent spin splitting
DFT calculations reveal unique spin textures in selected compounds
Identification of 7 spin splitting prototypes with potential for experimental realization
Abstract
Recent study (Yuan et. al., Phys. Rev. B 102, 014422 (2020)) revealed a SOC-independent spin splitting and spin polarization effect induced by antiferromagnetic ordering which do not necessarily require breaking of inversion symmetry or the presence of SOC, hence can exist even in centrosymmetric, low-Z light element compounds, considerably broadening the material base for spin polarization. In the present work we develop the magnetic symmetry conditions enabling such effect, dividing the 1651 magnetic space groups into 7 different spin splitting prototypes (SST-1 to SST-7). We use the 'Inverse Design' approach of first formulating the target property (here, spin splitting in low-Z compounds not restricted to low symmetry structures), then derive the enabling physical design principles to search realizable compounds that satisfy these a priori design principles. This process uncovers…
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