Nonseparability of multipartite systems in dilaton black hole

Fuente: arXiv
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Autores principales: Wu, Shu-Min, Teng, Xiao-Wei, Li, Wen-Mei, Wang, Yu-Xuan, Lu, Jianbo
Formato: Preprint
Publicado: 2025
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author Wu, Shu-Min
Teng, Xiao-Wei
Li, Wen-Mei
Wang, Yu-Xuan
Lu, Jianbo
author_facet Wu, Shu-Min
Teng, Xiao-Wei
Li, Wen-Mei
Wang, Yu-Xuan
Lu, Jianbo
contents We investigate the nonseparability of N-partite quantum systems by employing the Abe-Rajagopal (AR) $q$-conditional entropy for both free bosonic and fermionic fields in the background of a Garfinkle-Horowitz-Strominger (GHS) dilaton black hole. An intriguing finding is that the Hawking effect of the black hole can generate a net nonseparability of W state for fermionic field. Notably, we observe that fermionic nonseparability exhibits a stronger robustness than its bosonic counterpart, while fermionic coherence is found to be weaker than bosonic coherence within the dilaton black hole background. Additionally, our analysis reveals that the nonseparability of GHZ state is more pronounced than that of W state, yet quantum coherence of GHZ state is comparatively weaker than that of W state in dilaton spacetime. These results suggest that choosing the appropriate quantum resources for different particle types and quantum state configurations is essential for effectively tackling relativistic quantum information tasks.
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id arxiv_https___arxiv_org_abs_2503_17923
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nonseparability of multipartite systems in dilaton black hole
Wu, Shu-Min
Teng, Xiao-Wei
Li, Wen-Mei
Wang, Yu-Xuan
Lu, Jianbo
General Relativity and Quantum Cosmology
Quantum Physics
We investigate the nonseparability of N-partite quantum systems by employing the Abe-Rajagopal (AR) $q$-conditional entropy for both free bosonic and fermionic fields in the background of a Garfinkle-Horowitz-Strominger (GHS) dilaton black hole. An intriguing finding is that the Hawking effect of the black hole can generate a net nonseparability of W state for fermionic field. Notably, we observe that fermionic nonseparability exhibits a stronger robustness than its bosonic counterpart, while fermionic coherence is found to be weaker than bosonic coherence within the dilaton black hole background. Additionally, our analysis reveals that the nonseparability of GHZ state is more pronounced than that of W state, yet quantum coherence of GHZ state is comparatively weaker than that of W state in dilaton spacetime. These results suggest that choosing the appropriate quantum resources for different particle types and quantum state configurations is essential for effectively tackling relativistic quantum information tasks.
title Nonseparability of multipartite systems in dilaton black hole
topic General Relativity and Quantum Cosmology
Quantum Physics
url https://arxiv.org/abs/2503.17923