English

Dynamical Scaling of Surface Roughness and Entanglement Entropy in Disordered Fermion Models

Quantum Gases 2021-09-01 v2 Statistical Mechanics Quantum Physics

Abstract

Localization is one of the most fundamental interference phenomena caused by randomness, and its universal aspects have been extensively explored from the perspective of one-parameter scaling mainly for static properties. We numerically study dynamics of fermions on disordered onedimensional potentials exhibiting localization and find dynamical one-parameter scaling for surface roughness, which represents particle-number fluctuations at a given lengthscale, and for entanglement entropy when the system is in delocalized phases. This dynamical scaling corresponds to the Family-Vicsek scaling originally developed in classical surface growth, and the associated scaling exponents depend on the type of disorder. Notably, we find that partially localized states in the delocalized phase of the random-dimer model lead to anomalous scaling, where destructive interference unique to quantum systems leads to exponents unknown for classical systems and clean systems.

Keywords

Cite

@article{arxiv.2101.08148,
  title  = {Dynamical Scaling of Surface Roughness and Entanglement Entropy in Disordered Fermion Models},
  author = {Kazuya Fujimoto and Ryusuke Hamazaki and Yuki Kawaguchi},
  journal= {arXiv preprint arXiv:2101.08148},
  year   = {2021}
}

Comments

27 pages, 15 figures