Luttinger liquid with strong spin-orbital coupling and Zeeman splitting in quantum wires
arXiv:cond-mat/0403183 · doi:10.1103/PhysRevB.69.153307
Abstract
We study a one-dimensional interacting electron gas with the strong Rashba spin-orbit coupling and Zeeman splitting in a quantum well. A bosonization theory is developed for this system. The tunneling current may deviate from a simple power law which is that in an ordinary Luttinger liquid. The microscopic interacting coupling and the spin-orbital parameter may be measured by varying the external magnetic field in the tunneling experiment.
to be published in PRB
References in corpus (5)
Cited by in corpus (14)
- Spin-selective Peierls transition in interacting one-dimensional conductors with spin-orbit interaction
- Spin-orbital effects in magnetized quantum wires and spin chains
- Universal spin-induced Time Reversal Symmetry breaking in two-dimensional electron gases with Rashba spin-orbit interaction
- Rashba spin splitting in quantum wires
- Low-energy theory and RKKY interaction for interacting quantum wires with Rashba spin-orbit coupling
- Modulated Rashba interaction in a quantum wire: Spin and charge dynamics
- Spectral properties of Luttinger liquids: A comparative analysis of regular, helical, and spiral Luttinger liquids
- Magnetically-controlled impurities in quantum wires with strong Rashba coupling
- Collective excitation of quantum wires and effect of spin-orbit coupling in the presence of a magnetic field along the wire
- Transport properties for a Luttinger liquid wire with Rashba spin-orbit coupling and Zeeman splitting
- Half-metal phases in a quantum wire with modulated spin-orbit interaction
- Electron-electron interactions in partially mixed helical states
- Symmetry-protected spin gaps in quantum wires
- Influences of an impurity on the transport properties of one-dimensional antisymmetric spin filter