English

Universal power law in crossover from integrability to quantum chaos

Strongly Correlated Electrons 2015-06-17 v1

Abstract

We study models of interacting fermions in one dimension to investigate the crossover from integrability to non-integrability, i.e., quantum chaos, as a function of system size. Using exact diagonalization of finite-sized systems, we study this crossover by obtaining the energy level statistics and Drude weight associated with transport. Our results reinforce the idea that for system size LL \to \infty non-integrability sets in for an arbitrarily small integrability-breaking perturbation. The crossover value of the perturbation scales as a power law L3\sim L^{-3} when the integrable system is gapless and the scaling appears to be robust to microscopic details and the precise form of the perturbation. We conjecture that the exponent in the power law is characteristic of the random matrix ensemble describing the non-integrable system. For systems with a gap, the crossover scaling appears to be faster than a power law.

Keywords

Cite

@article{arxiv.1309.1865,
  title  = {Universal power law in crossover from integrability to quantum chaos},
  author = {Ranjan Modak and Subroto Mukerjee and Sriram Ramaswamy},
  journal= {arXiv preprint arXiv:1309.1865},
  year   = {2015}
}

Comments

5 pages, 7 figures