Deterministic generation of maximally discordant mixed states by dissipation
Abstract
Entanglement can be considered as a special quantum correlation, but not the only kind. Even for a separable quantum system, it is allowed to exist non-classical correlations. Here we propose two dissipative schemes for generating a maximally correlated state of two qubits in the absence of quantum entanglement, which was raised by [F. Galve, G. L. Giorgi, and R. Zambrini, {\color{blue}Phys. Rev. A {\bf 83}, 012102 (2011)}]. These protocols take full advantages of the interaction between four-level atoms and strongly lossy optical cavities. In the first scenario, we alternatively change the phases of two classical driving fields, while the second proposal introduces a strongly lossy coupled-cavity system. Both schemes can realize all Lindblad terms required by the dissipative dynamics, guaranteeing the maximally quantum dissonant state to be the unique steady state for a certain subspace of system. Moreover, since the target state is a mixed state, the performance of our method is evaluated by the definition of super-fidelity , and the strictly numerical simulations indicate that fidelity outstripping of the quantum dissonant state is achievable with the current cavity quantum electrodynamics parameters.
Keywords
Cite
@article{arxiv.1908.06594,
title = {Deterministic generation of maximally discordant mixed states by dissipation},
author = {X. X. Li and H. D. Yin and D. X. Li and X. Q. Shao},
journal= {arXiv preprint arXiv:1908.06594},
year = {2020}
}
Comments
10 pages, 10 figures, accepted by pra