Theory of electronic and spin-orbit proximity effects in graphene on Cu(111)
arXiv:1601.02445 · doi:10.1103/PhysRevB.93.155142
Abstract
We study orbital and spin-orbit proximity effects in graphene adsorbed to the Cu(111) surface by means of density functional theory (DFT). The proximity effects are caused mainly by the hybridization of graphene and copper d orbitals. Our electronic structure calculations agree well with the experimentally observed features. We carry out a graphene-Cu(111) distance dependent study to obtain proximity orbital and spin-orbit coupling parameters, by fitting the DFT results to a robust low energy model Hamiltonian. We find a strong distance dependence of the Rashba and intrinsic proximity induced spin-orbit coupling parameters, which are in the meV and hundreds of eV range, respectively, for experimentally relevant distances. The Dirac spectrum of graphene also exhibits a proximity orbital gap, of about 20 meV. Furthermore, we find a band inversion within the graphene states accompanied by a reordering of spin and pseudospin states, when graphene is pressed towards copper.
References in corpus (9)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Doping graphene with metal contacts
- Graphene Spintronics
- Graphene on transition-metal dichalcogenides: a platform for proximity spin-orbit physics and optospintronics
- Graphene-protected copper and silver plasmonics
- Single-step deposition of high-mobility graphene at reduced temperatures
- The random phase approximation applied to solids, molecules, and graphene-metal interfaces: From weak to strong binding regimes
- Understanding the origin of band gap formation in graphene on metals: graphene on Cu/Ir(111)
- Spin-orbit coupling in fluorinated graphene
Cited by in corpus (17)
- Model spin-orbit coupling Hamiltonians for graphene systems
- Theory of proximity-induced exchange coupling in graphene on hBN/(Co, Ni)
- Protected pseudohelical edge states in proximity graphene ribbons and flakes
- Copper adatoms on graphene: theory of orbital and spin-orbital effects
- Bilayer graphene encapsulated within monolayers of WS or CrGeTe: Tunable proximity spin-orbit or exchange coupling
- Resonant scattering due to adatoms in graphene: top, bridge, and hollow position
- Proximity spin-orbit and exchange coupling in ABA and ABC trilayer graphene van der Waals heterostructures
- Spin-orbit-proximitized ferromagnetic metal by monolayer transition metal dichalcogenide: Atlas of spectral functions, spin textures and spin-orbit torques in Co/MoSe, Co/WSe and Co/TaSe heterostructures
- Single and bilayer graphene on the topological insulator BiSe: Electronic and spin-orbit properties from first principles
- Perfect crossed Andreev reflection in the proximitized graphene/superconductor/proximitized graphene junctions
- Gate-tunable spin Hall effect in an all-light-element heterostructure: graphene with copper oxide
- Modeling the Oblique Spin Precession in Lateral Spin Valves for Accurate Determination of Spin Lifetime Anisotropy: Effect of Finite Contact Resistance and Channel Length
- Spin-valley dependent double Andreev reflections in the proximitized graphene/superconductor junction
- Graphene with Rashba spin-orbit interaction and coupling to a magnetic layer: Electron states localized at the domain wall
- Spin absorption by in situ deposited nanoscale magnets on graphene spin valves
- Landau levels in spin-orbit coupling proximitized graphene: bulk states
- Edge states in proximitized graphene ribbons and flakes in a perpendicular magnetic field: emergence of lone pseudohelical pairs and pure spin-current states