Anderson Model out of equilibrium: decoherence effects in transport through a quantum dot
arXiv:1001.3873 · doi:10.1103/PhysRevB.81.165115
Abstract
The paper deals with the nonequilibrium two-lead Anderson model, considered as an adequate description for transport through a d-c biased quantum dot. Using a self-consistent equation-of-motion method generalized out of equilibrium, we calculate a fourth-order decoherence rate induced by a bias voltage . This decoherence rate provides a cut-off to the infrared divergences of the self-energy showing up in the Kondo regime. At low temperature, the Kondo peak in the density of states is split into two peaks pinned at the chemical potential of the two leads. The height of these peaks is controlled by . The voltage dependence of the differential conductance exhibits a zero-bias peak followed by a broad Coulomb peak at large , reflecting charge fluctuations inside the dot. The low-bias differential conductance is found to be a universal function of the normalized bias voltage , where is the Kondo temperature. The universal scaling with a single energy scale at low bias voltages is also observed for the renormalized decoherence rate . We discuss the effect of on the crossover from strong to weak coupling regime when either the temperature or the bias voltage is increased.
23 pages, 10 figures
References in corpus (9)
- The numerical renormalization group method for quantum impurity systems
- Kondo effect in quantum dots coupled to ferromagnetic leads
- NRG study of the Kondo effect in the presence of itinerant-electron ferromagnetism
- On steady-state currents through nano-devices: a scattering-states numerical renormalization group approach to open quantum systems
- Gate-controlled spin-splitting in quantum dots with ferromagnetic leads in the Kondo regime
- Imaginary-time formulation of steady-state nonequilibrium: application to strongly correlated transport
- Transport properties and Kondo correlations in nanostructures: the time-dependent DMRG method applied to quantum dots coupled to Wilson chains
- Nonequilibrium Transport through a Kondo Dot: Decoherence Effects
- Nonequilibrium Kondo Effect in a Quantum Dot Coupled to Ferromagnetic Leads
Cited by in corpus (5)
- Fermionic superoperators for zero-temperature non-linear transport: real-time perturbation theory and renormalization group for Anderson quantum dots
- Nonequilibrium self-energies, Ng approach and heat current of a nanodevice for small bias voltage and temperature
- Coulomb-blockade effect in nonlinear mesoscopic capacitors
- Time-dependent quantum transport through an interacting quantum dot beyond sequential tunneling: second-order quantum rate equations
- Width of the charge-transfer peak in the SU(N) impurity Anderson model and its relevance to non-equilibrium transport