Spin structure factors of doped monolayer Germanene in the presence of spin-orbit coupling
arXiv:2106.11377 · doi:10.1038/s41598-021-87268-x
Abstract
In this paper, we present a Kane-Mele model in the presence of magnetic field and next nearest neighbors hopping amplitudes for investigations of the spin susceptibilities of Germanene layer. Green's function approach has been implemented to find the behavior of dynamical spin susceptibilities of Germanene layer within linear response theoryand in the presence of magnetic field and spin-orbit coupling at finite temperature. Our results show the magnetic excitation mode for both longitudinal and transverse components of spin tends to higher frequencies with spin-orbit coupling strength. Moreover the frequency positions of sharp peaks in longitudinal dynamical spin susceptibility are not affected by variation of magnetic field while the peaks in transverse dynamical susceptibility moves to lower frequencies with magnetic field. The effects of electron doping on frequency behaviors of spin susceptibilities have been addressed in details. Finally the temperature dependence of static spin structure factors due to the effects of spin-orbit coupling, magnetic field and chemical potential has been studied.
References in corpus (14)
- Electric Field Effect in Atomically Thin Carbon Films
- Two Dimensional Atomic Crystals
- Boron nitride substrates for high-quality graphene electronics
- Dielectric function, screening, and plasmons in 2D graphene
- Intrinsic and Rashba Spin-orbit Interactions in Graphene Sheets
- Dynamical polarization of graphene at finite doping
- Nonvolatile Memory Cells Based on MoS2/Graphene Heterostructures
- Spin-orbit gap of graphene: First-principles calculations
- Quantum Anomalous Hall Effect in Graphene from Rashba and Exchange Effects
- Tuning the Structural, Electronic, and Magnetic Properties of Germanene by the Adsorption of 3 Transition Metal Atoms
- Graphene magnetoresistance in a parallel magnetic field: Spin polarization effect
- Dynamical current-current correlation of the hexagonal lattice and graphene
- Enhanced photogalvanic effect in graphene due to Rashba spin-orbit coupling
- Optical spin injection in graphene with Rashba spin-orbit interaction