English

Correlation versus dissipation in a non-Hermitian Anderson impurity model

Quantum Gases 2025-03-27 v3 Mesoscale and Nanoscale Physics Strongly Correlated Electrons Quantum Physics

Abstract

We analyze the competition between strong correlations and dissipation in quantum impurity systems from the Kondo regime to the valence fluctuation regime by developing a slave-boson theory for a non-Hermitian Anderson impurity model with one-body loss. Notably, in the non-Hermitian Kondo regime, strong correlations qualitatively change the nature of dissipation through renormalization effects, where the effective one-body loss is suppressed and emergent many-body dissipation characterized by the complex-valued hybridization is generated. We unveil the mechanism of a dissipative quantum phase transition of the Kondo state on the basis of this renormalization effect, which counterintuitively enhances the lifetime of the impurity against loss. We also find a crossover from the non-Hermitian Kondo regime to the valence fluctuation regime dominated by one-body dissipation. Our results can be tested in a wide variety of setups such as quantum dots coupled to electronic leads and quantum point contacts in ultracold Fermi gases.

Keywords

Cite

@article{arxiv.2408.03494,
  title  = {Correlation versus dissipation in a non-Hermitian Anderson impurity model},
  author = {Kazuki Yamamoto and Masaya Nakagawa and Norio Kawakami},
  journal= {arXiv preprint arXiv:2408.03494},
  year   = {2025}
}

Comments

20 pages, 7 figures, to appear in Physical Review B

R2 v1 2026-06-28T18:05:56.691Z