English

Dissipation in Periodically Driven Quantum Systems: Partial Secularization and Thermodynamic Consistency

Quantum Physics 2026-07-31 v1 Statistical Mechanics

Abstract

Periodically driven open quantum systems are central to quantum thermodynamics and quantum control. These systems are typically described using Floquet-Born-Markov master equations, derived with the use of a full secular approximation, and whose thermodynamic implications are often overlooked. In this context, we show that such a strong secular approximation may lead to unphysical predictions for steady state energy currents. We then demonstrate that a coarse-grained formulation of the master equation can regularize these issues while yielding completely positive dynamics and consistent energy currents. The coarse-graining time has a clear physical interpretation, as it defines the temporal resolution at which a Markovian master equation can describe the evolution of the periodically driven system. We show the consistency and validity of our approach by comparing to an exact non-Markovian simulation in paradigmatic examples: a driven two-level system and a three-level maser coupled to hot and cold thermal reservoirs. Our work provides a practical framework for correctly applying the secular approximation in periodically driven-dissipative systems and for assessing the accuracy of master equations of the GKSL form.

Cite

@article{arxiv.2608.00225,
  title  = {Dissipation in Periodically Driven Quantum Systems: Partial Secularization and Thermodynamic Consistency},
  author = {Luísa T. Tude and Carlos Ortega-Taberner and Roberta Zambrini and Gonzalo Manzano},
  journal= {arXiv preprint arXiv:2608.00225},
  year   = {2026}
}

Comments

35 pages, 9 figures