English

Kinetics of information scrambling in correlated electrons: disorder-driven transition from shock-wave to FKPP dynamics

Statistical Mechanics 2023-12-13 v2 Quantum Physics

Abstract

Quenched disorder slows down the scrambling of quantum information. Using a bottom-up approach, we formulate a kinetic theory of scrambling in a correlated metal near a superconducting transition, following the scrambling dynamics as the impurity scattering rate is increased. Within this framework, we rigorously show that the butterfly velocity vv is bounded by the light cone velocity vlcv_{\rm lc } set by the Fermi velocity. We analytically identify a disorder-driven dynamical transition occurring at small but finite disorder strength between a spreading of information characterized at late times by a discontinuous shock wave propagating at the maximum velocity vlcv_{\rm lc}, and a smooth traveling wave belonging to the Fisher or Kolmogorov-Petrovsky-Piskunov (FKPP) class and propagating at a slower, if not considerably slower, velocity vv. In the diffusive regime, we establish the relation v2/λFKPPDelv^2/\lambda_{\rm FKPP} \sim D_{\rm el} where λFKPP\lambda_{\rm FKPP} is the Lyapunov exponent set by the inelastic scattering rate and DelD_{\rm el} is the elastic diffusion constant.

Keywords

Cite

@article{arxiv.2305.04958,
  title  = {Kinetics of information scrambling in correlated electrons: disorder-driven transition from shock-wave to FKPP dynamics},
  author = {Camille Aron and Éric Brunet and Aditi Mitra},
  journal= {arXiv preprint arXiv:2305.04958},
  year   = {2023}
}

Comments

$4+\epsilon$ pages plus 15 pages of Appendix. Minor modifications (published version)