Javascript must be enabled to continue!
Quantitative analysis on electric dipole energy in Rashba band splitting
View through CrossRef
AbstractWe report on quantitative comparison between the electric dipole energy and the Rashba band splitting in model systems of Bi and Sb triangular monolayers under a perpendicular electric field. We used both first-principles and tight binding calculations on p-orbitals with spin-orbit coupling. First-principles calculation shows Rashba band splitting in both systems. It also shows asymmetric charge distributions in the Rashba split bands which are induced by the orbital angular momentum. We calculated the electric dipole energies from coupling of the asymmetric charge distribution and external electric field and compared it to the Rashba splitting. Remarkably, the total split energy is found to come mostly from the difference in the electric dipole energy for both Bi and Sb systems. A perturbative approach for long wave length limit starting from tight binding calculation also supports that the Rashba band splitting originates mostly from the electric dipole energy difference in the strong atomic spin-orbit coupling regime.
Springer Science and Business Media LLC
Title: Quantitative analysis on electric dipole energy in Rashba band splitting
Description:
AbstractWe report on quantitative comparison between the electric dipole energy and the Rashba band splitting in model systems of Bi and Sb triangular monolayers under a perpendicular electric field.
We used both first-principles and tight binding calculations on p-orbitals with spin-orbit coupling.
First-principles calculation shows Rashba band splitting in both systems.
It also shows asymmetric charge distributions in the Rashba split bands which are induced by the orbital angular momentum.
We calculated the electric dipole energies from coupling of the asymmetric charge distribution and external electric field and compared it to the Rashba splitting.
Remarkably, the total split energy is found to come mostly from the difference in the electric dipole energy for both Bi and Sb systems.
A perturbative approach for long wave length limit starting from tight binding calculation also supports that the Rashba band splitting originates mostly from the electric dipole energy difference in the strong atomic spin-orbit coupling regime.
Related Results
Rashba effect in PbTe/PbSrTe asymmetric quantum wells
Rashba effect in PbTe/PbSrTe asymmetric quantum wells
Recently, spin effect in narrow gap semiconductor heterostructures has attracted much attention. However, Rashba spin effect is quite different in Ⅳ-Ⅵ asymmetric quantum wells (QWs...
High Performance Ultrawide Temperature Range Planar Hall Devices by 2D Hidden‐Rashba Systems
High Performance Ultrawide Temperature Range Planar Hall Devices by 2D Hidden‐Rashba Systems
Abstract
Lattice symmetry determines the manifestations of the spin‐orbit coupling (SOC) effect in crystals, e.g. spin polarizations in hidde...
Spin-wave band gaps created by rotating square rods in triangular lattice magnonic crystals
Spin-wave band gaps created by rotating square rods in triangular lattice magnonic crystals
Recently, magnonic crystals which are the magnetic counterparts of photonic crystals or phononic crystals are becoming a hot area of research. In this paper, band structure of two-...
Axial dipole moments of solar active regions in cycles 21-24
Axial dipole moments of solar active regions in cycles 21-24
<p>The axial dipole moments of emerging active regions control the evolution of the axial dipole moment of the whole photospheric magnetic field and the strength of p...
(Invited) Engineering Multipolar Resonances in Nonlocal Metasurfaces
(Invited) Engineering Multipolar Resonances in Nonlocal Metasurfaces
When arranged in a metasurface, enhancing field interactions within scattering elements enables precise control over incident light phase and amplitude. This arrangement induces sc...
Phase biasing of a Josephson junction using Rashba–Edelstein effect
Phase biasing of a Josephson junction using Rashba–Edelstein effect
AbstractA charge-current-induced shift in the spin-locked Fermi surface leads to a non-equilibrium spin density at a Rashba interface, commonly known as the Rashba–Edelstein effect...
Molecular structure and properties of sulfur dioxide under the external electric field
Molecular structure and properties of sulfur dioxide under the external electric field
SO2 is not only an important resource but also a notorious air pollutant, so it has attracted increasing attention nowadays. This paper focuses on the influence of external electri...
Interaction-Induced Dipole Moments of Carbon Dioxide
Interaction-Induced Dipole Moments of Carbon Dioxide
The infrared absorption spectrum of carbon dioxide-rich planetary atmospheres, such as Venus or ancient Mars, can be difficult to model due to the presence of collision-induced abs...

