First-order coherence versus entanglement in a nano-mechanical cavity
Li-hui Sun, Gao-xiang Li, Zbigniew Ficek

TL;DR
This paper investigates the coherence and entanglement properties of a nano-mechanical cavity with an oscillating mirror and atomic lattice, revealing how different interactions influence quantum correlations and coherence.
Contribution
It provides a detailed analysis of how first-order coherence and entanglement are affected by mode interactions in a nano-mechanical cavity system.
Findings
Entanglement between polariton and mechanical modes is sensitive to first-order coherence.
No entanglement is generated between polaritons when both are coupled via parametric interactions.
First-order coherence can be maximized even without entanglement.
Abstract
The coherence and correlation properties of effective bosonic modes of a nano-mechanical cavity composed of an oscillating mirror and containing an optical lattice of regularly trapped atoms are studied. The system is modeled as a three-mode system, two orthogonal polariton modes representing the coupled optical lattice and the cavity mode, and one mechanical mode representing the oscillating mirror. We examine separately the cases of two-mode and three-mode interactions which are distinguished by a suitable tuning of the mechanical mode to the polariton mode frequencies. In the two-mode case, we find that the occurrence of entanglement between one of the polariton modes and the mechanical mode is highly sensitive to the presence of the first-order coherence between the modes. In particular, the creation of the first-order coherence among the modes is achieved at the expense of…
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