Dynamics of quantum correlations in colored environments
C. Benedetti, F. Buscemi, P. Bordone, M. G. A. Paris

TL;DR
This paper investigates how quantum entanglement and discord evolve in two qubits affected by classical colored noise, revealing that the environment's microscopic structure significantly influences quantum correlation dynamics.
Contribution
It provides analytical expressions for quantum correlation dynamics considering non-Gaussian noise environments, highlighting the importance of environmental structure beyond the noise spectrum.
Findings
Quantum correlations can decay monotonically or exhibit sudden death and revivals.
Different environmental configurations with the same spectrum can produce opposite effects.
The microscopic structure of the environment critically affects quantum correlation dynamics.
Abstract
We address the dynamics of entanglement and quantum discord for two non interacting qubits initially prepared in a maximally entangled state and then subjected to a classical colored noise, i.e. coupled with an external environment characterized by a noise spectrum of the form . More specifically, we address systems where the Gaussian approximation fails, i.e. the sole knowledge of the spectrum is not enough to determine the dynamics of quantum correlations. We thus investigate the dynamics for two different configurations of the environment: in the first case the noise spectrum is due to the interaction of each qubit with a single bistable fluctuator with an undetermined switching rate, whereas in the second case we consider a collection of classical fluctuators with fixed switching rates. In both cases we found analytical expressions for the time dependence of…
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