Effect of Markov and Non-Markov Classical Noise on Entanglement Dynamics
arXiv:1204.3412 · doi:10.1142/S0219477512420035
Abstract
We analyze the effect of a classical noise into the entanglement dynamics between two particles, initially entangled, subject to continuous time quantum walks in a one-dimensional lattice. The noise is modeled by randomizing the transition amplitudes from one site to another. Both Markovian and non-Markovian environments are considered. For the Markov regime an exponential decay of the initial quantum correlation is found, while the loss of coherence of the quantum state increases monotonically with time up to a saturation value depending upon the degrees of freedom of the system. For the non-Markov regime the presence or absence of entanglement revival and entanglement sudden death phenomena is found or deduced depending on the peculiar characteristics of the noise. Our results indicate that the entanglement dynamics in the non-Markovian regime is affected by the persistence of the memory effects of the environment and by its intrinsic features.
9 pages, 3 figures
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Cited by in corpus (4)
- Harnessing non-Markovian quantum memory by environmental coupling
- Time-evolution of tripartite quantum discord and entanglement under local and non-local random telegraph noise
- Engineering decoherence for two-qubit systems interacting with a classical environment
- Recovering the lost steerability of quantum states within non-Markovian environments by utilizing quantum partially collapsing measurements