Theoretical Perspectives on Spintronics and Spin-Polarized Transport
arXiv:cond-mat/0002256 · doi:10.1109/20.908600
Abstract
Selected problems of fundamental importance for spintronics and spin-polarized transport are reviewed, some of them with a special emphasis on their applications in quantum computing and coherent control of quantum dynamics. The role of the solid-state environment in the decoherence of electron spins is discussed. In particular, the limiting effect of the spin-orbit interaction on spin relaxation of conduction electrons is carefully examined in the light of recent theoretical and experimental progress. Most of the proposed spintronic devices involve spin-polarized transport across interfaces in various hybrid structures. The specific example discussed here, of a magnetic semiconductor/superconductor interface, displays many intricacies which a complex spin-dependent interface introduces in the spin-polarized transport. It is proposed that pairs of entangled electrons in a superconductor (Cooper pairs) can be transfered to a non-superconducting region, and consequently separated for a transport study of the spin entanglement. Several important theoretical proposals for quantum computing are based on electronic and nuclear spin entanglement in a solid. Physical requirements for these proposals to be useful are discussed and some alternative views are presented. Finally, a recent discovery of optical control of nuclear spins in semiconductors is reviewed and placed in the context of a long-standing search for electronic control of nuclear dynamics.
6 pages, uses IEEEtran.sty, review paper to be presented at INTERMAG 2000, to be published in IEEE Transactions on Magnetics
References in corpus (4)
- Probing Entanglement and Non-locality of Electrons in a Double-Dot via Transport and Noise
- Phonon-induced spin relaxation of conduction electrons in aluminum
- Spin-polarized transport and Andreev reflection in semiconductor/superconductor hybrid structures
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Cited by in corpus (24)
- Spintronics: Fundamentals and applications
- Semiconductor Spintronics
- Theory of nuclear induced spectral diffusion: Spin decoherence of phosphorus donors in Si and GaAs quantum dots
- Spin-polarized transport in inhomogeneous magnetic semiconductors: theory of magnetic/nonmagnetic p-n junctions
- Spin Electronics and Spin Computation
- Spin injection through the depletion layer: a theory of spin-polarized p-n junctions and solar cells
- Theory of spin-polarized bipolar transport in magnetic p-n junctions
- Competing magnetic and spin gap-less semiconducting behaviour in fully compensated ferrimagnet CrVTiAl: Theory and Experiment
- A proposal for a spin-polarized solar battery
- Semiclassical Monte Carlo Model for In-Plane Transport of Spin-Polarized Electrons in III-V Heterostructures
- Drift-diffusion model for spin-polarized transport in a non-degenerate 2DEG controlled by a spin-orbit interaction
- Semiclassical theory of spin-orbit interactions using spin coherent states
- Focusing of Spin Polarization in Semiconductors by Inhomogeneous Doping
- Semiclassical theory of spin-orbit interaction in the extended phase space
- Proposal for all-electrical measurement of T_1 in semiconductors
- Double quantum dot turnstile as an electron spin entangler
- Monte Carlo Modeling of Spin FETs Controlled by Spin-Orbit Interaction
- Spin transport in inhomogeneous magnetic fields: a proposal for Stern-Gerlach-like experiments with conduction electrons
- Spin-conserving and reversing photoemission from the surface states of BiSe and Au (111)
- Monte Carlo Simulation of Spin-Polarized Transport
- Understanding entangled spins in QED
- Modelling of Optical Detection of Spin-Polarized Carrier Injection into Light-Emitting Devices
- Propagation of Spin-Polarized Electrons Through Interfaces Separating Differently Doped Semiconductor Regions
- Current-driven switching of magnetisation- theory and experiment