English

Dynamic Kibble-Zurek scaling framework for open dissipative many-body systems crossing quantum transitions

Statistical Mechanics 2020-05-27 v1 Quantum Physics

Abstract

We study the quantum dynamics of many-body systems, in the presence of dissipation due to the interaction with the environment, under Kibble-Zurek (KZ) protocols in which one Hamiltonian parameter is slowly, and linearly in time, driven across the critical value of a zero-temperature quantum transition. In particular we address whether, and under which conditions, open quantum systems can develop a universal dynamic scaling regime similar to that emerging in closed systems. We focus on a class of dissipative mechanisms whose dynamics can be reliably described through a Lindblad master equation governing the time evolution of the system's density matrix. We argue that a dynamic scaling limit exists even in the presence of dissipation, whose main features are controlled by the universality class of the quantum transition. This requires a particular tuning of the dissipative interactions, whose decay rate uu should scale as utsκu\sim t_s^{-\kappa} with increasing the time scale tst_s of the KZ protocol, where the exponent κ=z/(yμ+z)\kappa = z/(y_\mu+z) depends on the dynamic exponent zz and the renormalization-group dimension yμy_\mu of the driving Hamiltonian parameter. Our dynamic scaling arguments are supported by numerical results for KZ protocols applied to a one-dimensional fermionic wire undergoing a quantum transition in the same universality class of the quantum Ising chain, in the presence of dissipative mechanisms which include local pumping, decay, and dephasing.

Keywords

Cite

@article{arxiv.2003.07604,
  title  = {Dynamic Kibble-Zurek scaling framework for open dissipative many-body systems crossing quantum transitions},
  author = {Davide Rossini and Ettore Vicari},
  journal= {arXiv preprint arXiv:2003.07604},
  year   = {2020}
}

Comments

15 pages, 8 figures

R2 v1 2026-06-23T14:17:08.628Z