English

Tunable Memory Effect in Dissipative Strongly Correlated Quantum Systems

Quantum Gases 2026-08-11 v1

Abstract

Strongly interacting quantum many-body systems subjected to non-Markovian dissipation pose a formidable challenge due to the interplay between strong correlation effects and memory effects. In this Letter, we develop a general theoretical framework to compute how a system observable responds to dissipation, which captures memory effects at short times and recovers the Markovian limit at longer times. Using this framework, we predict that, for a strongly correlated quantum critical state with critical exponent η\eta, the short-time dynamics of a system observable always obeys a t2ηt^{2\eta} scaling law. This emerges as a universal result from the interplay between strong correlation and memory effects, independent of the microscopic Hamiltonian of the system. We further reveal a crossover behavior of this scaling law to either t2η1t^{2\eta-1} or linear-in-tt behavior beyond the memory time scale. We propose a concrete physical realization of a non-Markovian bath with tunable memory time using ultracold atoms, where our predictions can be straightforwardly verified in current experiments.

Keywords

Cite

@article{arxiv.2608.10534,
  title  = {Tunable Memory Effect in Dissipative Strongly Correlated Quantum Systems},
  author = {Haowei Li and Yu Chen and Hui Zhai},
  journal= {arXiv preprint arXiv:2608.10534},
  year   = {2026}
}

Comments

5+6 pages, 3 figures