Collinear Rashba-Edelstein effect in non-magnetic chiral materials
arXiv:2304.05287 · doi:10.1103/PhysRevB.108.245203
Abstract
Efficient generation and manipulation of spin signals in a given material without invoking external magnetism remain one of the challenges in spintronics. The spin Hall effect (SHE) and Rashba-Edelstein effect (REE) are well-known mechanisms to electrically generate spin accumulation in materials with strong spin-orbit coupling (SOC), but the exact role of the strength and type of SOC, especially in crystals with low symmetry, has yet to be explained. In this study, we investigate REE in two different families of non-magnetic chiral materials, elemental semiconductors (Te and Se) and semimetallic disilicides (TaSi and NbSi), using an approach based on density functional theory (DFT). By analyzing spin textures across the full Brillouin zones and comparing them with REE magnitudes calculated as a function of chemical potential, we link specific features in the electronic structure with the efficiency of the induced spin accumulation. Our findings show that magnitudes of REE can be increased by: (i) the presence of purely radial (Weyl-type) spin texture manifesting as the parallel spin-momentum locking, (ii) high spin polarization of bands along one specific crystallographic direction, (iii) low band velocities. By comparing materials possessing the same crystal structures, but different strengths of SOC, we conclude that larger SOC may indirectly contribute to the enhancement of REE. It yields greater spin-splitting of bands along specific crystallographic directions, which prevents canceling the contributions from the oppositely spin-polarized bands over wider energy regions and helps maintain larger REE magnitudes. We believe that these results will be useful for designing spintronics devices and may aid further computational studies searching for efficient REE in materials with different symmetries and SOC strengths.
References in corpus (17)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- A new class of chiral materials hosting magnetic skyrmions beyond room temperature
- Multiple types of topological fermions in transition metal silicides
- Spectral and Fermi surface properties from Wannier interpolation
- Large Fermi Arcs in Unconventional Weyl Semimetal RhSi
- New classes of chiral topological nodes with non-contractible surface Fermi arcs in CoSi
- Weyl Node and Spin Texture in Trigonal Tellurium and Selenium
- Observation of two independent skyrmion phases in a chiral magnetic material
- Current-induced Orbital and Spin Magnetizations in Crystals with Helical Structure
- Detection of chirality-induced spin polarization over millimeters in polycrystalline bulk samples of chiral disilicides NbSi and TaSi
- Long-range current-induced spin accumulation in chiral crystals
- Analogs of Rashba-Edelstein effect from density functional theory
- Current-induced spin polarization in spin-orbit-coupled two-dimensional electron systems
- Diversity of Radial Spin Textures in Chiral Materials
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- Spin and orbital Edelstein effect in spin-orbit coupled noncentrosymmetric superconductor