English

Typicality approach to the optical conductivity in thermal and many-body localized phases

Strongly Correlated Electrons 2016-11-09 v2 Statistical Mechanics

Abstract

We study the frequency dependence of the optical conductivity Reσ(ω)\text{Re} \, \sigma(\omega) of the Heisenberg spin-1/21/2 chain in the thermal and near the transition to the many-body localized phase induced by the strength of a random zz-directed magnetic field. Using the method of dynamical quantum typicality, we calculate the real-time dynamics of the spin-current autocorrelation function and obtain the Fourier transform Reσ(ω)\text{Re} \, \sigma(\omega) for system sizes much larger than accessible to standard exact-diagonalization approaches. We find that the low-frequency behavior of Reσ(ω)\text{Re} \, \sigma(\omega) is well described by Reσ(ω)σdc+aωα\text{Re} \, \sigma(\omega) \approx \sigma_\text{dc} + a \, |\omega|^\alpha, with α1\alpha \approx 1 in a wide range within the thermal phase and close to the transition. We particularly detail the decrease of σdc\sigma_\text{dc} in the thermal phase as a function of increasing disorder for strong exchange anisotropies. We further find that the temperature dependence of σdc\sigma_\text{dc} is consistent with the existence of a mobility edge.

Keywords

Cite

@article{arxiv.1512.08519,
  title  = {Typicality approach to the optical conductivity in thermal and many-body localized phases},
  author = {Robin Steinigeweg and Jacek Herbrych and Frank Pollmann and Wolfram Brenig},
  journal= {arXiv preprint arXiv:1512.08519},
  year   = {2016}
}

Comments

5 pages, 5 figures (+ 3 pages, 5 figures)