New Journal of Physics (Jan 2021)

Quantum scarring in a spin-boson system: fundamental families of periodic orbits

  • Saúl Pilatowsky-Cameo,
  • David Villaseñor,
  • Miguel A Bastarrachea-Magnani,
  • Sergio Lerma-Hernández,
  • Lea F Santos,
  • Jorge G Hirsch

DOI
https://doi.org/10.1088/1367-2630/abd2e6
Journal volume & issue
Vol. 23, no. 3
p. 033045

Abstract

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As the name indicates, a periodic orbit is a solution for a dynamical system that repeats itself in time. In the regular regime, periodic orbits are stable, while in the chaotic regime, they become unstable. The presence of unstable periodic orbits is directly associated with the phenomenon of quantum scarring, which restricts the degree of delocalization of the eigenstates and leads to revivals in the dynamics. Here, we study the Dicke model in the superradiant phase and identify two sets of fundamental periodic orbits. This experimentally realizable atom–photon model is regular at low energies and chaotic at high energies. We study the effects of the periodic orbits in the structure of the eigenstates in both regular and chaotic regimes and obtain their quantized energies. We also introduce a measure to quantify how much scarred an eigenstate gets by each family of periodic orbits and compare the dynamics of initial coherent states close and away from those orbits.

Keywords