Strong influence of non-magnetic ligands on the momentum dependent spin splitting in antiferromagnets
Lin-Ding Yuan, Zhi Wang, Jun-Wie Luo, Alex Zunger

TL;DR
This study demonstrates that non-magnetic ligands significantly influence momentum-dependent spin splitting in antiferromagnets, revealing that subtle ligand deformations can cause large spin splitting effects, challenging traditional models that neglect ligand effects.
Contribution
We developed a DFT model Hamiltonian incorporating realistic ligand effects at constant chemistry, revealing ligand influence on spin splitting in antiferromagnetic materials.
Findings
Ligand deformations can induce giant spin splitting.
Similar structures can exhibit contrasting spin behaviors.
Ligand effects are crucial in understanding spin splitting phenomena.
Abstract
Recent studies have shown that the non-relativistic antiferromagnetic ordering could generate momentum-dependent spin splitting analogous to the Rashba effect, but free from the requirement of relativistic spin-orbit coupling. Whereas the classification of such compounds can be illustrated by different spin-splitting prototypes (SSTs) from symmetry analysis and density functional theory calculations, the significant variation in bonding and structure of these diverse compounds representing different SSTs clouds the issue of how much of the variation in spin splitting can be traced back to the symmetry-defined characteristics, rather to the underlining chemical and structural diversity. The alternative model Hamiltonian approaches do not confront the issues of chemical and structural complexity, but often consider only the magnetic sublattice, dealing with the all-important effects of…
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