English

Functional renormalization group approach to the Anderson impurity model

Strongly Correlated Electrons 2009-09-29 v1

Abstract

We develop a functional renormalization group approach which describes the low-energy single-particle properties of the Anderson impurity model up to intermediate on-site interactions U15ΔU \lesssim 15 \Delta, where Δ\Delta is the hybridization in the wide-band limit. Our method is based on a generalization of a method proposed by Sch\"{u}tz, Bartosch and Kopietz [Phys. Rev. B 72, 035107 (2005)], using two independent Hubbard-Stratonovich fields associated with transverse and longitudinal spin fluctuations. Although we do not reproduce the exponentially small Kondo scale in the limit UU \to \infty, the spin fluctuations included in our approach remove the unphysical Stoner instability predicted by mean-field theory for U>πΔU > \pi \Delta. We discuss different decoupling schemes and show that a decoupling which manifestly respects the spin-rotational invariance of the problem gives rise to the lowest quasiparticle weight. To obtain a closed flow equation for the fermionic self-energy we also propose a new truncation scheme of the functional renormalization group flow equations using Dyson-Schwinger equations to express bosonic vertex functions in terms of fermionic ones.

Keywords

Cite

@article{arxiv.0811.2809,
  title  = {Functional renormalization group approach to the Anderson impurity model},
  author = {Lorenz Bartosch and Hermann Freire and Jose Juan Ramos Cardenas and Peter Kopietz},
  journal= {arXiv preprint arXiv:0811.2809},
  year   = {2009}
}

Comments

15 pages, 16 figures

R2 v1 2026-06-21T11:42:41.409Z