Non-equilibrium steady-states of memoryless quantum collision models
Abstract
We investigate the steady state properties arising from the open system dynamics described by a memoryless (Markovian) quantum collision model, corresponding to a master equation in the ultra-strong coupling regime. By carefully assessing the work cost of switching on and off the system-environment interaction, we show that only a coupling Hamiltonian in the energy-preserving form drives the system to thermal equilibrium, while any other interaction leads to non-equilibrium steady states that are supported by steady-state currents. These currents provide a neat exemplification of the housekeeping work and heat. Furthermore, we characterize the specific form of system-environment interaction that drives the system to a steady-state exhibiting coherence in the energy eigenbasis, thus, giving rise to families of states that are non-passive.
Keywords
Cite
@article{arxiv.2001.01723,
title = {Non-equilibrium steady-states of memoryless quantum collision models},
author = {Giacomo Guarnieri and Daniele Morrone and Barış Çakmak and Francesco Plastina and Steve Campbell},
journal= {arXiv preprint arXiv:2001.01723},
year = {2020}
}
Comments
11 pages, 3 figures. Substantially revised and expanded in v2; v3 close to published version