Characterizing non-Markovianity via quantum interferometric power
Himadri Shekhar Dhar, Manabendra Nath Bera, Gerardo Adesso

TL;DR
This paper introduces a new non-Markovianity measure based on quantum interferometric power, demonstrating its effectiveness and robustness in detecting quantum information backflow in open quantum systems.
Contribution
It proposes a novel non-Markovianity indicator using quantum interferometric power, validated through examples involving dephasing and amplitude damping channels.
Findings
The measure aligns with existing non-Markovianity quantifiers.
It is more robust than entanglement-based measures.
Applicable to quantum metrology and potentially continuous variables.
Abstract
Non-Markovian evolution in open quantum systems is often characterized in terms of the backflow of information from environment to system and is thus an important facet in investigating the performance and robustness of quantum information protocols. In this work, we explore non-Markovianity through the breakdown of monotonicity of a metrological figure of merit, called the quantum interferometric power, which is based on the minimal quantum Fisher information obtained by local unitary evolution of one part of the system, and can be interpreted as a quantifier of quantum correlations beyond entanglement. We investigate our proposed non-Markovianity indicator in two relevant examples. First, we consider the action of a single-party dephasing channel on a maximally entangled two-qubit state, by applying the Jamio{\l}kowski-Choi isomorphism. We observe that the proposed measure is…
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