Entanglement dynamics of coupled quantum oscillators in independent nonMarkovian baths
Jen-Tsung Hsiang, Onat Ar{\i}soy, and Bei-Lok Hu

TL;DR
This study investigates how nonMarkovian environments influence entanglement dynamics in coupled quantum oscillators, revealing that environmental memory can prolong entanglement temporarily but has limited impact at steady state.
Contribution
It provides detailed numerical analysis of entanglement behavior in symmetric and hybrid nonMarkovian baths, highlighting the role of memory effects and transfer between baths.
Findings
Entanglement duration correlates with bath memory time in intermediate regimes.
Steady-state entanglement is barely affected by bath nonMarkovianity.
Memory transfer from long to short memory baths can temporarily enhance entanglement.
Abstract
This work strives to better understand how the entanglement in an open quantum system, here represented by two coupled Brownian oscillators, is affected by a nonMarkovian environment (with memories), here represented by two independent baths each oscillator separately interacts with. We consider two settings, a `symmetric' configuration wherein the parameters of both oscillators and their baths are identical, and an `asymmetric' configuration wherein they are different, in particular, a `hybrid' configuration, where one of the two coupled oscillators interacts with a nonMarkovian bath and the other with a Markovian bath. We ask two groups of questions: Q1) Which time regime does the bath's nonMarkovianity benefit the system's entanglement most? The answers we get from detailed numerical studies suggest that A1) For an initially entangled pair of oscillators, we see that in the…
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Taxonomy
TopicsQuantum Information and Cryptography · Advanced Thermodynamics and Statistical Mechanics · Nonlinear Dynamics and Pattern Formation
