Maximal steady-state entanglement in autonomous quantum thermal machines
Abstract
We devise an autonomous quantum thermal machine consisting of three pairwise-interacting qubits, two of which are locally coupled to thermal reservoirs. The machine operates autonomously, as it requires no time-coherent control, external driving or quantum bath engineering, and is instead propelled by a chemical potential bias. Under ideal conditions, we show that this out-of-equilibrium system can deterministically generate a maximally entangled steady-state between two of the qubits, or any desired pure two-qubit entangled state, emerging as a dark state of the system. We study the robustness of entanglement production with respect to several relevant parameters, obtaining nearly-maximally-entangled states well-away from the ideal regime of operation. Furthermore, we show that our machine architecture can be generalised to a configuration with qubits, in which only a potential bias and two-body interactions are sufficient to generate genuine multipartite maximally entangled steady states in the form of a W state of qubits.
Keywords
Cite
@article{arxiv.2401.01776,
title = {Maximal steady-state entanglement in autonomous quantum thermal machines},
author = {Shishir Khandelwal and Björn Annby-Andersson and Giovanni Francesco Diotallevi and Andreas Wacker and Armin Tavakoli},
journal= {arXiv preprint arXiv:2401.01776},
year = {2025}
}
Comments
6+6 pages, 7 figures