English

Periodically-driven quantum thermal machines from warming up to limit cycle

Quantum Physics 2021-11-16 v2 Mesoscale and Nanoscale Physics Statistical Mechanics

Abstract

Theoretical treatments of periodically-driven quantum thermal machines (PD-QTMs) are largely focused on the limit-cycle stage of operation characterized by a periodic state of the system. Yet, this regime is not immediately accessible for experimental verification. Here, we present a general thermodynamic framework that can handle the performance of PD-QTMs both before and during the limit-cycle stage of operation. It is achieved by observing that periodicity may break down at the ensemble average level, even in the limit-cycle phase. With this observation, and using conventional thermodynamic expressions for work and heat, we find that a complete description of the first law of thermodynamics for PD-QTMs requires a new contribution, which vanishes only in the limit-cycle phase under rather weak system-bath couplings. Significantly, this contribution is substantial at strong couplings even at limit cycle, thus largely affecting the behavior of the thermodynamic efficiency. We demonstrate our framework by simulating a quantum Otto engine building upon a driven resonant level model. Our results provide new insights towards a complete description of PD-QTMs, from turn-on to the limit-cycle stage and, particularly, shed light on the development of quantum thermodynamics at strong coupling.

Keywords

Cite

@article{arxiv.2106.10594,
  title  = {Periodically-driven quantum thermal machines from warming up to limit cycle},
  author = {Junjie Liu and Kenneth A. Jung and Dvira Segal},
  journal= {arXiv preprint arXiv:2106.10594},
  year   = {2021}
}

Comments

submitted. Comments and suggestions are highly welcome

R2 v1 2026-06-24T03:23:36.791Z