English

Entanglement Entropy Near Kondo-Destruction Quantum Critical Points

Strongly Correlated Electrons 2015-12-09 v2

Abstract

We study the impurity entanglement entropy SeS_e in quantum impurity models that feature a Kondo-destruction quantum critical point (QCP) arising from a pseudogap in the conduction-band density of states or from coupling to a bosonic bath. On the local-moment (Kondo-destroyed) side of the QCP, the entanglement entropy contains a critical component that can be related to the order parameter characterizing the quantum phase transition. In Kondo models describing a spin-\Simp\Simp, SeS_e assumes its maximal value of ln(2\Simp+1)\ln(2\Simp+1) at the QCP and throughout the Kondo phase, independent of features such as particle-hole symmetry and under- or over-screening. In Anderson models, SeS_e is nonuniversal at the QCP, and at particle-hole symmetry, rises monotonically on passage from the local-moment phase to the Kondo phase; breaking this symmetry can lead to a cusp peak in SeS_e due to a divergent charge susceptibility at the QCP. Implications of these results for quantum critical systems and quantum dots are discussed.

Keywords

Cite

@article{arxiv.1503.04479,
  title  = {Entanglement Entropy Near Kondo-Destruction Quantum Critical Points},
  author = {J. H. Pixley and Tathagata Chowdhury and M. T. Miecnikowski and Jaimie Stephens and Christopher Wagner and Kevin Ingersent},
  journal= {arXiv preprint arXiv:1503.04479},
  year   = {2015}
}

Comments

15 pages, 8 figures, replaced with published version, Editor's Suggestion