Theory of Transport through Quantum-Dot Spin Valves in the Weak-Coupling Regime
arXiv:cond-mat/0404455 · doi:10.1103/PhysRevB.70.195345
Abstract
We develop a theory of electron transport through quantum dots that are weakly coupled to ferromagnetic leads. The theory covers both the linear and nonlinear transport regime, takes non-collinear magnetization of the leads into account, and allows for an externally-applied magnetic field. We derive generalized rate equations for the dot's occupation and accumulated spin and discuss the influence of the dot's spin on the transmission. A negative differential conductance and a nontrivial dependence of the conductance on the angle between the lead magnetizations is predicted.
14 pages, 13 figures, updated version as published, Journal reference