English

Chiral orbital/spin textures and Edelstein effects in monolayer Janus TMDs

Other Condensed Matter 2026-04-23 v1

Abstract

We investigate the orbital and spin Edelstein effect(OEE and SEE) in two-dimensional Janus transition metal dichalcogenides (TMDs) of the form MXX^\prime (M=Mo, W, Nb; X/X=S, Se, Te)(M = Mo,\ W,\ Nb;\ X/X^\prime = S,\ Se,\ Te) with the aid of density functional theory calculations and tight-binding model Hamiltonian studies. The chalcogen layers XX and XX^\prime, break the mirror symmetry to introduce an internal electric field EintE_{int} normal to the plane, which is responsible for OEE and SEE. Our results show that in a non-Janus framework, the wavefunctions at the valence and conduction bands are dominated with the x2y2>|x^2-y^2>, xy>|xy>, and z2>|z^2> orbitals. Due to the EintE_{int} of the Janus system, these orbitals are now intermixed with the xz>|xz> and yz>|yz> orbitals to produce a robust orbital texture around the valleys Γ,K\Gamma,K and KK^\prime. The spin orbit coupling, in addition to the formation of a spin texture, introduces a chirality reversal to the orbital texture. An applied in plane electric field creates both OEE and SEE with the former being one order higher in magnitude. This makes the Janus materials promising for spin-orbitronics. Our work paves the way for further experimental exploration for orbital and spin orbital torque in Janus TMDs.

Keywords

Cite

@article{arxiv.2511.09974,
  title  = {Chiral orbital/spin textures and Edelstein effects in monolayer Janus TMDs},
  author = {Pratik Sahu and Sashi Satpathy and Birabar Ranjit Kumar Nanda},
  journal= {arXiv preprint arXiv:2511.09974},
  year   = {2026}
}