Coherence and Entanglement in a Non-commutative Spacetime

Fuente: arXiv
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Autores principales: Lobo, Iarley P., Varão, Gislaine, Gubitosi, Giulia, Rojas, Moises, Bezerra, Valdir B.
Formato: Preprint
Publicado: 2025
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author Lobo, Iarley P.
Varão, Gislaine
Gubitosi, Giulia
Rojas, Moises
Bezerra, Valdir B.
author_facet Lobo, Iarley P.
Varão, Gislaine
Gubitosi, Giulia
Rojas, Moises
Bezerra, Valdir B.
contents We investigate the emergence of quantum coherence and quantum correlations in a two-particle system with deformed symmetries arising from the quantum nature of spacetime. We demonstrate that the deformation of energy-momentum composition induces a momentum-dependent interaction that counteracts the decoherence effects described by the Lindblad equation in quantum spacetime. This interplay leads to the formation of coherence, entanglement and other correlations, which we quantify using concurrence, the $l_1$-norm of coherence, quantum mutual information and Local Quantum Fisher Information. Our analysis reveals that while the openness of quantum spacetime ultimately degrades entanglement, it also facilitates the creation and preservation of both classical and quantum correlations.
format Preprint
id arxiv_https___arxiv_org_abs_2506_03282
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Coherence and Entanglement in a Non-commutative Spacetime
Lobo, Iarley P.
Varão, Gislaine
Gubitosi, Giulia
Rojas, Moises
Bezerra, Valdir B.
Quantum Physics
General Relativity and Quantum Cosmology
We investigate the emergence of quantum coherence and quantum correlations in a two-particle system with deformed symmetries arising from the quantum nature of spacetime. We demonstrate that the deformation of energy-momentum composition induces a momentum-dependent interaction that counteracts the decoherence effects described by the Lindblad equation in quantum spacetime. This interplay leads to the formation of coherence, entanglement and other correlations, which we quantify using concurrence, the $l_1$-norm of coherence, quantum mutual information and Local Quantum Fisher Information. Our analysis reveals that while the openness of quantum spacetime ultimately degrades entanglement, it also facilitates the creation and preservation of both classical and quantum correlations.
title Coherence and Entanglement in a Non-commutative Spacetime
topic Quantum Physics
General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2506.03282