Influence of device geometry and imperfections on the interpretation of transverse magnetic focusing experiments
arXiv:2104.12358 · doi:10.1186/s11671-022-03671-x
Abstract
Spatially separating electrons of different spins and efficiently generating spin currents are crucial steps towards building practical spintronics devices. Transverse magnetic focusing is a potential technique to accomplish both those tasks. In a material where there is significant Rashba spin--orbit interaction, electrons of different spins will traverse different paths in the presence of an external magnetic field. Experiments have demonstrated the viability of this technique by measuring conductance spectra that indicate the separation of spin-up and spin-down electrons. However the effect that the geometry of the leads has on these measurements is not well understood. We show that the resolution of features in the conductance spectra is affected by the shape, separation and width of the leads. Furthermore, the number of subbands occupied by the electrons in the leads affects the ratio between the amplitudes of the spin-split peaks in the spectra. We simulated devices with random onsite potentials and observed that transverse magnetic focusing devices are sensitive to disorder. Ultimately we show that careful choice and characterisation of device geometry is crucial for correctly interpreting the results of transverse magnetic focusing experiments.
13 pages, 13 figures. Final version with minor revisions from previous version
References in corpus (6)
- All-electric all-semiconductor spin field effect transistors
- Transverse Electron Focusing in Systems with Spin-Orbit Coupling
- Theory of Edge States in Systems with Rashba Spin-Orbit Coupling
- Detection of spin polarized currents in quantum point contacts via transverse electron focusing
- Controlled spatial separation of spins and coherent dynamics in spin-orbit-coupled nanostructures
- Temperature Dependence of Spin-Split Peaks in Transverse Electron Focusing
Cited by in corpus (4)
- Gate voltage dependent Rashba spin splitting in hole transverse magnetic focussing
- Spin polarisation and spin dependent scattering of holes in transverse magnetic focussing
- Probing the Anisotropic Fermi Surface in Tetralayer Graphene via Transverse Magnetic Focusing
- Transverse magnetic focusing in two-dimensional hole gases