All-Optical Generation and Tuning of Ultrafast Spin-Hall Current via Optical Vortices
arXiv:1811.09519 · doi:10.1038/s41598-018-35378-4
Abstract
Spin Hall effect, one of the cornerstones in spintronics refers to the emergence of an imbalance in the spin density transverse to a charge flow in a sample under voltage bias. This study points to a novel way for an ultrafast generation and tuning of a unidirectional nonlinear spin Hall current by means of subpicosecond laser pulses of optical vortices. When interacting with matter, the optical orbital angular momentum (OAM) carried by the vortex and quantified by its topological charge is transferred to the charge carriers. The residual spin-orbital coupling in the sample together with confinement effects allow exploiting the absorbed optical OAM for spatio-temporally controlling the spin channels. Both the non-linear spin Hall current and the dynamical spin Hall angle increase for a higher optical topological charge. The reason is the transfer of a higher amount of OAM and the enhancement of the effective spin-orbit interaction strength. No bias voltage is needed. We demonstrate that the spin Hall current can be all-optically generated in an open circuit geometry for ring-structured samples. These results follow from a full-fledged propagation of the spin-dependent quantum dynamics on a time-space grid coupled to the phononic environment. The findings point to a versatile and controllable tool for the ultrafast generation of spin accumulations with a variety of applications such as a source for ultrafast spin transfer torque and charge and spin current pulse emitter.
12 pages, 6 figures
References in corpus (16)
- Emergent Phenomena Induced by Spin-Orbit Coupling at Surfaces and Interfaces
- Interface-Induced Phenomena in Magnetism
- Persistent Spin Textures in Semiconductor Nanostructures
- Strong tuning of Rashba spin orbit interaction in single InAs nanowires
- Quantum rings as electron spin beam splitters
- Spin states and persistent currents in mesoscopic rings: spin-orbit interactions
- Optimal Control of Quantum Rings by Terahertz Laser Pulses
- Spin Hall Current Driven by Quantum Interferences in Mesoscopic Rashba Rings
- Spin properties of single electron states in coupled quantum dots
- Twisted Radiation by Electrons in Spiral Motion
- Laser-controlled local magnetic field with semiconductor quantum rings
- Semiconductor quantum ring as a solid-state spin qubit
- Revivals, collapses and magnetic-pulse generation in quantum rings
- Photo-induced, non-equilibrium spin and charge polarization in quantum rings
- Spectral properties and magneto-optical excitations in semiconductor double-rings under Rashba spin-orbit interaction
- Tunable High Harmonic Pulses from Nanorings Swirled by Optical Vortices