Monte Carlo matrix-product-state approach to the false vacuum decay in
the monitored quantum Ising chain
- URL: http://arxiv.org/abs/2306.01067v3
- Date: Mon, 6 Nov 2023 08:48:23 GMT
- Title: Monte Carlo matrix-product-state approach to the false vacuum decay in
the monitored quantum Ising chain
- Authors: Jeff Maki, Anna Berti, Iacopo Carusotto, Alberto Biella
- Abstract summary: We study the competition between coherent dynamics, which creates resonant bubbles of the true vacuum, and measurements which induce heating and reduce the amount of quantum correlations.
The false vacuum decay and the thermalization physics are characterized in terms of the magnetization, connected correlation function, and the trajectory-resolved entanglement entropy.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: In this work we characterize the false vacuum decay in the ferromagnetic
quantum Ising chain with a weak longitudinal field subject to continuous
monitoring of the local magnetization. Initializing the system in a metastable
state, the false vacuum, we study the competition between coherent dynamics,
which tends to create resonant bubbles of the true vacuum, and measurements
which induce heating and reduce the amount of quantum correlations. To this end
we exploit a numerical approach based on the combination of matrix product
states with stochastic quantum trajectories which allows for the simulation of
the trajectory-resolved non-equilibrium dynamics of interacting many-body
systems in the presence of continuous measurements. We show how the presence of
measurements affects the false vacuum decay: at short times the departure from
the local minimum is accelerated while at long times the system thermalizes to
an infinite-temperature incoherent mixture. For large measurement rates the
system enters a quantum Zeno regime. The false vacuum decay and the
thermalization physics are characterized in terms of the magnetization,
connected correlation function, and the trajectory-resolved entanglement
entropy.
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