Multiscale Perturbative Analysis of Quantum Entanglement Fluctuations in Bosonic Josephson Junctions: A Case Study
Keywords:
Quantum Entanglement, Bosonic Josephson Junctions, Macroscopic Quantum Coherence, Quantum Control Mechanisms, Perturbative Analysis, Quantum Simulations, Entanglement FluctuationsAbstract
In this study, we conduct a perturbative analysis of quantum entanglement fluctuations within bosonic Josephson junctions. By employing a multiscale approach, we explore the role of quantum entanglement in macroscopic quantum coherence, which is pivotal for next-generation quantum technologies. Our findings reveal significant insights into the correlation dynamics of entangled states, offering potential pathways for optimizing quantum control mechanisms. The results underscore the necessity of integrating advanced computational models to enhance the precision of quantum simulations.
References
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Boynazarov T, Ryu DH, Cho AY et al (2025) Flexible Hf0.5Zr0.5O2/La0.7Sr0.3MnO3 heterostructure by water-etching transfer for tunable multilevel RRAM in neuromorphic computing. J Alloys Compd 1044:184383. https://doi.org/10.1016/J.JALLCOM.2025.184383