A Numerical Renormalization Group approach to Non-Equilibrium Green's Functions for Quantum Impurity Models
Abstract
We present a method for the calculation of dynamical correlation functions of quantum impurity systems out of equilibrium using Wilson's numerical renormalization group. Our formulation is based on a complete basis set of the Wilson chain and embeds the recently derived algorithm for equilibrium spectral functions. Our method fulfills the spectral weight conserving sum-rule exactly by construction. A local Coulomb repulsion is switched on at , and the asymptotic steady-state spectral functions are obtained for various values of as well as magnetic field strength and temperature . These benchmark tests show excellent agreement between the time-evolved and the directly calculated equilibrium NRG spectra for finite . This method could be used for calculating steady-state non-equilibrium spectral functions at finite bias through interacting nano-devices.
Cite
@article{arxiv.0803.3004,
title = {A Numerical Renormalization Group approach to Non-Equilibrium Green's Functions for Quantum Impurity Models},
author = {F. B. Anders},
journal= {arXiv preprint arXiv:0803.3004},
year = {2009}
}
Comments
21 pages, 6 figures