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Quantum Foundations
Genuine multipartite nonlocality of entangled thermal states
arXiv
Authors: G. McKeown, F. L. Semiao, H. Jeong, M. Paternostro
Year
2010
Paper ID
9021
Status
Preprint
Abstract Read
~2 min
Abstract Words
113
Citations
N/A
Abstract
We assess quantum non-locality of multiparty entangled thermal states by studying, quantitatively, both tripartite and quadripartite states belonging to the Greenberger-Horne-Zeilinger (GHZ), W and linear cluster-state classes and showing violation of relevant Bell-like inequalities. We discuss the conditions for maximizing the degree of violation against the local thermal character of the states and the inefficiency of the detection apparatuses. We demonstrate that such classes of multipartite entangled states can be made to last quite significantly, notwithstanding adverse operating conditions. This opens up the possibility for coherent exploitation of multipartite quantum channels made out of entangled thermal states. Our study is accompanied by a detailed description of possible generation schemes for the states analyzed.
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- We assess quantum non-locality of multiparty entangled thermal states by studying, quantitatively, both tripartite and quadripartite states belonging to the...
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