English

Layer-number-dependent spin Hall effects in transition metal monocarbides $M_{2}\rm{C}$ ($M=\rm{V}, \rm{Nb}, \rm{Ta}$)

Materials Science 2023-01-05 v1

Abstract

The recent discovery of strong spin Hall effects (SHE) in 2D layered topological semimetals has attracted intensive attention due to its exotic electronic properties and potential applications in spintronic devices. In this paper, we systematically study the topological properties and intrinsic SHE of layered transition metal carbides M2CM_{2}\rm{C} (M=V,Nb,TaM=\rm{V}, \rm{Nb}, \rm{Ta}). The results show that both bulk and monolayer M2CM_{2}\rm{C} have symmetry-protected nodal points (NPs) and lines (NLs) originating from the dd band crossing near the Fermi level (EFE_F). The inclusion of SOC breaks the degeneracy of NLs and NPs, contributing to large spin Hall conductivity (SHC) up to \sim1100 and \sim200 (/e)(Ωcm)1(\hbar / e)(\Omega \mathrm{cm})^{-1} for bulk and monolayer Ta2_{2}C, respectively. Remarkably, we find that magnitude of SHC exhibits a significant enhancement by increasing the layer number. For eight-layer Ta2_{2}C, the maximum value of SHC can reach up to \sim600 (/e)(Ωcm)1(\hbar / e)(\Omega \mathrm{cm})^{-1}, comparable to many reported 3D topological materials. Analysis of spin Berry curvature reveals that the large SHC originates from layer-number-dependent nodal line structure near the EFE_F, in which the repeated crossover between valence and conduction bands creates large amounts of NPs along the ΓK\Gamma\rm{-K} route. Our findings not only provide a new platform for experimental research of low-dimensional SHE, but also suggest an effective way of realizing giant SHE by controlling layer thickness.

Keywords

Cite

@article{arxiv.2301.01436,
  title  = {Layer-number-dependent spin Hall effects in transition metal monocarbides $M_{2}\rm{C}$ ($M=\rm{V}, \rm{Nb}, \rm{Ta}$)},
  author = {Xi Zuo and Yulin Feng and Na Liu and Bing Huang and Desheng Liu and Bin Cui},
  journal= {arXiv preprint arXiv:2301.01436},
  year   = {2023}
}

Comments

13 pages, 5 figures; references added