Quantum memory assisted entropic uncertainty and entanglement dynamics: Two qubits coupled with local fields and Ornstein Uhlenbeck noise
Atta Ur Rahman, Nour Zidan, S. M. Zangi, Hazrat Ali

TL;DR
This paper investigates how Ornstein-Uhlenbeck noise affects entropic uncertainty and entanglement in two non-interacting qubits, revealing conditions for prolonged entanglement and the impact of classical environments.
Contribution
It provides a detailed analysis of entropic uncertainty and entanglement dynamics under Ornstein-Uhlenbeck noise in two-qubit systems, considering different environmental configurations.
Findings
Entropic uncertainty correlates with disentanglement in Werner states.
Classical environments variably induce entropic uncertainty and entanglement decay.
Optimal parameters can prolong entanglement and suppress uncertainty growth.
Abstract
Entropic uncertainty and entanglement are two distinct aspects of quantum mechanical procedures. To estimate entropic uncertainty relations, entropies are used: the greater the entropy bound, the less effective the quantum operations and entanglement are. In this regard, we analyze the entropic uncertainty, entropic uncertainty lower bound, and concurrence dynamics in two non-interacting qubits. The exposure of two qubits is studied in two different qubit-noise configurations, namely, common qubit-noise and independent qubit-noise interactions. To include the noisy effects of the local external fields, a Gaussian Ornstein Uhlenbeck process is considered. We show that the rise in entropic uncertainty gives rise to the disentanglement in the two-qubit Werner type state and both are directly proportional. Depending on the parameters adjustment and the number of environments coupled,…
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Taxonomy
TopicsQuantum Information and Cryptography · Advanced Thermodynamics and Statistical Mechanics · Quantum Mechanics and Applications
