In non-centrosymmetric metals, spin-orbit coupling (SOC) induces momentum-dependent spin polarization at the Fermi surfaces. This is exemplified by the valley-contrasting spin polarization in monolayer transition metal dichalcogenides (TMDCs) with in-plane inversion asymmetry. However, the valley configuration of massive Dirac fermions in TMDCs is fixed by the graphene-like structure, which limits the variety of spin-valley coupling. Here, we show that the layered polar metal BaMnX2 (X=Bi, Sb) hosts tunable spin-valley-coupled Dirac fermions, which originate from the distorted X square net with in-plane lattice polarization. We found that in spite of the larger SOC, BaMnBi2 has approximately one-tenth the lattice distortion of BaMnSb2, from which a different configuration of spin-polarized Dirac valleys is theoretically predicted. This was experimentally observed as a clear difference in the Shubnikov-de Haas oscillation at high fields between the two materials. The chemically tunable spin-valley coupling in BaMnX2 makes it a promising material for various spin-valleytronic devices.
@article{arxiv.2103.06765,
title = {Tunable spin-valley coupling in layered polar Dirac metals},
author = {Masaki Kondo and Masayuki Ochi and Tatsuhiro Kojima and Ryosuke Kurihara and Daiki Sekine and Masakazu Matsubara and Atsushi Miyake and Masashi Tokunaga and Kazuhiko Kuroki and Hiroshi Murakawa and Noriaki Hanasaki and Hideaki Sakai},
journal= {arXiv preprint arXiv:2103.06765},
year = {2021}
}
Comments
25 pages, 4 figures. Published in Communications Materials