Rashba spin splitting based on trilayer graphene systems
arXiv:2310.20136 · doi:10.1103/PhysRevB.109.035426
Abstract
We establish a general Rashba Hamiltonian for trilayer graphene (TLG) by introducing an extrinsic layer-dependent Rashba spin-orbit coupling (SOC) arising from the off-plane inversion symmetry breaking. Our results indicate that the band spin splitting depends strongly on the layer-distribution and sign of Rashba SOC as well as the ABA or ABC stacking order of TLG. We find that spin splitting is significantly enhanced as the number of layers of the Rashba SOC with the same sign and magnitude increases. For the spatially-separated two Rashba SOCs of the same magnitude but the opposite sign, no spin splitting arises in ABC-TLG due to the preservation of inversion symmetry that ensures the complete cancellation of contributions from the opposite layers, whereas nonzero spin splitting is observed for ABA-TLG due to its own lack of inversion symmetry. We further illustrate that gate voltage is effective to modulate the spin-polarized states near the band edges. Moreover, we use density functional theory calculations to verify the Rashba splitting effect in the example of TLG interfaced by Au layer(s), which induce simultaneously the effective terms of Rashba SOC and gate voltage. Our results demonstrate the significance of layer and symmetry in manipulating spin and can be extended to multilayer graphene or other van der Waals interface systems.
9 pages
References in corpus (23)
- The electronic properties of graphene
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Graphene Spintronics
- Emergence of magnetism in graphene materials and nanostructures
- Room temperature magnetic order on zigzag edges of narrow graphene nanoribbons
- Atomic-scale control of graphene magnetism using hydrogen atoms
- Van der Waals heterostructures for spintronics and opto-spintronics
- Spin-Orbit Proximity Effect in Graphene
- Band Structure of ABC-Stacked Graphene Trilayers
- Strong electron-hole symmetric Rashba spin-orbit coupling in graphene/monolayer transition metal dichalcogenide heterostructures
- Electrical and Thermal Generation of Spin Currents by Magnetic Graphene
- Magic-angle helical trilayer graphene
- Swapping Exchange and Spin-Orbit Coupling in 2D van der Waals Heterostructures
- Topological phases in gated bilayer graphene: Effects of Rashba spin-orbit coupling and exchange field
- Proximity induced spin orbit effects in graphene on Au
- Observation of Coexisting Dirac Bands and Moiré Flat Bands in Magic-Angle Twisted Trilayer Graphene
- Proximity spin-orbit and exchange coupling in ABA and ABC trilayer graphene van der Waals heterostructures
- Energy spectrum and Landau levels in bilayer graphene with spin-orbit interaction
- Observation of Time-Reversal Invariant Helical Edge-Modes in Bilayer Graphene/WSe Heterostructure
- Induced exchange and spin-orbit effects by proximity in graphene on Ni and Co
- Rashba interaction and local magnetic moments in a graphene-Boron Nitride heterostructure by intercalation with Au
- Graphene bilayer and trilayer Moiré lattice with Rashba spin-orbit coupling