Enhanced entanglement negativity in boundary driven monitored fermionic chains
Abstract
We investigate entanglement dynamics in continuously monitored open quantum systems featuring current-carrying non-equilibrium states. We focus on a prototypical one-dimensional model of boundary-driven non-interacting fermions with monitoring of the local density, whose average Lindblad dynamics features a well-studied ballistic to diffusive crossover in transport. Here we analyze the dynamics of the fermionic negativity, mutual information, and purity along different quantum trajectories. We show that monitoring this boundary-driven system enhances its entanglement negativity at long times, which otherwise decays to zero in absence of measurements. This result is in contrast with the case of unitary evolution where monitoring suppresses entanglement production. For small values of , the stationary-state negativity shows a logarithmic scaling with system size, transitioning to an area-law scaling as is increased beyond a critical value. Similar critical behavior is found in the mutual information, while the late-time purity shows no apparent signature of a transition, being for all values of . Our work unveils the double role of weak monitoring in current-driven open quantum systems, simultaneously damping transport and enhancing entanglement.
Cite
@article{arxiv.2205.07992,
title = {Enhanced entanglement negativity in boundary driven monitored fermionic chains},
author = {Xhek Turkeshi and Lorenzo Piroli and Marco Schirò},
journal= {arXiv preprint arXiv:2205.07992},
year = {2022}
}
Comments
10 pages, comments are welcome