Charge density waves and competition between electron-lattice and spin–lattice couplings in semihydrogenated transition metal dichalcogenides
Abstract
In this work, we apply first-principles calculations to describe the formation of charge density waves in semihydrogenated transition metal dichalcogenides. The effect accompanies structural distortions characterized by triple or double dimerizations in Mo rows. The former, detected in the MoS2 case as the lowest energy configuration, is a Peiels-like transition induced by the Fermi surface nesting, whereas the latter is metastable and presents a spin-Peierls character, leading to Mo triangles with a frustrated antiferromagnetic configuration. We discuss the phenomenon in terms of a competition between electron-lattice and spin–lattice couplings. We also show that the trend observed in MoS2 is reversed in the MoSe2 case, which stabilizes, as the lowest energy configuration, the frustrated antiferromagnetic phase. Other metastable magnetic orderings are described.

Please wait while we load your content...