Open system quantum dynamics with correlated initial states, not completely positive maps and non-Markovianity
A. R. Usha Devi, A. K. Rajagopl, and Sudha

TL;DR
This paper introduces a canonical structure for A-maps in open quantum system dynamics, providing a new criterion based on relative entropy to identify non-Markovian behavior, demonstrated through examples involving correlated qubit states.
Contribution
It proposes a canonical A-map framework and a relative entropy-based criterion for detecting non-Markovianity in open quantum systems with correlated initial states.
Findings
Canonical A-map simplifies analysis of CP and NCP dynamics.
Relative entropy difference effectively detects non-Markovianity.
Examples show non-Markovian effects in various correlated qubit states.
Abstract
Dynamical A and B maps have been employed extensively by Sudarshan and co-workers to investigate open system evolution of quantum systems. A canonical structure of the A-map is introduced here. It is shown that this canonical A-map enables us to investigate if the dynamics is completely positive (CP) or non-completely positive (NCP) in an elegant way and hence, it subsumes the basic results on open system dynamics. Identifying memory effects in open system evolution is gaining increasing importance recently and here, a criterion of non-Markovianity, based on the relative entropy of the dynamical state is proposed. The relative entropy difference of the dynamical system serves as a complementary characterization - though not related directly - to the fidelity difference criterion proposed recently. Three typical examples of open system evolution of a qubit, prepared initially in a…
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