Observation of spin splitting in the surface electronic structure of antiferromagnet NdBi
arXiv:2502.16335 · doi:10.1103/PhysRevResearch.7.L022005
Abstract
Spin splitting in electronic band structures via antiferromagnetic orders is a new route to control spin-polarized carriers that is available for spintronics applications. Here, we investigated the spin degree of freedom in the electronic band structures of the antiferromagnet NdBi using laser-based spin- and angle-resolved photoemission spectroscopy (laser-SARPES). Our laser-SARPES experiments revealed that the two surface bands that appear in the antiferromagnetic state are spin-polarized in opposite directions as a counterpart of the spin splitting. Moreover, we observed that the spin polarization is antisymmetric to the electron momentum, indicating that spin degeneracy is lifted due the breaking of inversion symmetry at the surface. These results are well reproduced by our density functional theory calculations with the single-q magnetic structure, implying that the spin-split surface state is determined by the breaking of inversion symmetry in concert with the antiferromagnetic order.
References in corpus (10)
- Emergent Phenomena Induced by Spin-Orbit Coupling at Surfaces and Interfaces
- Electrical Manipulation of a Topological Antiferromagnetic State
- Maximal Rashba-like spin splitting via kinetic energy-driven inversion symmetry breaking
- Emergence of Fermi arcs and novel magnetic splitting in an antiferromagnet
- Devil's staircase transition of the electronic structures in CeSb
- Coherent control over three-dimensional spin polarization for the spin-orbit coupled surface state of BiSe
- Symmetry-adapted modeling for molecules and crystals
- Unusual change in the Dirac-cone energy band upon two-step magnetic transition in CeBi
- Antiferromagnetic topological insulator with selectively gapped Dirac cones
- Origin of the exotic electronic states in antiferromagnetic NdSb