English

Walking behavior induced by $\mathcal{PT}$ symmetry breaking in a non-Hermitian $\rm XY$ model with clock anisotropy

Quantum Physics 2024-12-10 v2 Strongly Correlated Electrons High Energy Physics - Theory

Abstract

A quantum system governed by a non-Hermitian Hamiltonian may exhibit zero temperature phase transitions that are driven by interactions, just as its Hermitian counterpart, raising the fundamental question how non-Hermiticity affects quantum criticality. In this context we consider a non-Hermitian system consisting of an XY\rm XY model with a complex-valued four-state clock interaction that may or may not have parity-time-reversal (PT\mathcal{PT}) symmetry. When the PT\mathcal{PT} symmetry is broken, and time-evolution becomes non-unitary, a scaling behavior similar to the Berezinskii-Kosterlitz-Thouless phase transition ensues, but in a highly unconventional way, as the line of fixed points is absent. From the analysis of the dd-dimensional RG equations, we obtain that the unconventional behavior in the PT\mathcal{PT} broken regime follows from the collision of two fixed points in the d2d\to 2 limit, leading to walking behavior or pseudocriticality. For d=2+1d=2+1 the near critical behavior is characterized by a correlation length exponent ν=3/8\nu=3/8, a value smaller than the mean-field one. These results are in sharp contrast with the PT\mathcal{PT}-symmetric case where only one fixed point arises for 2<d<42<d<4 and in d=1+1d=1+1 three lines of fixed points occur with a continuously varying critical exponent ν\nu.

Keywords

Cite

@article{arxiv.2404.17373,
  title  = {Walking behavior induced by $\mathcal{PT}$ symmetry breaking in a non-Hermitian $\rm XY$ model with clock anisotropy},
  author = {Eduard Naichuk and Jeroen van den Brink and Flavio S. Nogueira},
  journal= {arXiv preprint arXiv:2404.17373},
  year   = {2024}
}

Comments

11 pages, two figures