Nondissipative Spin Hall Effect via Quantized Edge Transport
Top Cited Papers
- 19 September 2005
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 95 (13) , 136602
- https://doi.org/10.1103/physrevlett.95.136602
Abstract
The spin Hall effect in a two-dimensional electron system on honeycomb lattice with both intrinsic and Rashba spin-orbit couplings is studied numerically. Integer quantized spin Hall conductance is obtained at the zero Rashba coupling limit when electron Fermi energy lies in the energy gap created by the intrinsic spin-orbit coupling, in agreement with recent theoretical prediction. While nonzero Rashba coupling destroys electron spin conservation, the spin Hall conductance is found to remain near the quantized value, being insensitive to disorder scattering, until the energy gap collapses with increasing the Rashba coupling. We further show that the charge transport through counterpropagating spin-polarized edge channels is well quantized, which is associated with a topological invariant of the system.Keywords
All Related Versions
This publication has 22 references indexed in Scilit:
- Experimental Observation of the Spin-Hall Effect in a Two-Dimensional Spin-Orbit Coupled Semiconductor SystemPhysical Review Letters, 2005
- Observation of the Spin Hall Effect in SemiconductorsScience, 2004
- Sum rules for spin Hall conductivity cancellationPhysical Review B, 2004
- Spin Current and Polarization in Impure Two-Dimensional Electron Systems with Spin-Orbit CouplingPhysical Review Letters, 2004
- Spin currents, spin populations, and dielectric function of noncentrosymmetric semiconductorsPhysical Review B, 2004
- Semiclassical Spin Transport in Spin-Orbit-Coupled BandsPhysical Review Letters, 2004
- Suppression of the persistent spin Hall current by defect scatteringPhysical Review B, 2004
- non-Abelian holonomy and dissipationless spin current in semiconductorsPhysical Review B, 2004
- Universal Intrinsic Spin Hall EffectPhysical Review Letters, 2004
- Dissipationless Quantum Spin Current at Room TemperatureScience, 2003