arXiv · 2605.10424
Quantum Correlations of Neutrinos in the Kerr-Newman Space-time
Abstract
Quantum phases provide a connection between gravitation and quantum information, which proposes a novel avenue to explore the properties of space-time. In this paper, we investigate the quantum correlations (QCs) of neutrinos in the Kerr--Newman space-time for both zero- and nonzero-angular-momentum propagation. The results show that, for zero-angular-momentum propagation, the oscillation periods of the survival probability and QCs progressively decrease with propagation distance in the inward direction. In the outward direction, increasing $M$ lengthens the oscillation periods of $P_{\nu_e\rightarrow\nu_e}$, entanglement, and the monogamy of nonlocality, whereas increasing angular momentum $a$ or charge $Q$ shortens them. For nonzero-angular-momentum propagation, the metric parameters also generate local profile modulations through additional two-path interference terms, rather than merely rescaling the oscillation period. Furthermore, we find that, despite differences in their variation ranges, entanglement and coherence exhibit highly consistent oscillation behaviors in both propagation cases. These findings provide a comprehensive understanding for the neutrino-based relativistic quantum information.
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Ze-Wen Li, Shu-Jun Rong. 2026-05-11. Quantum Correlations of Neutrinos in the Kerr-Newman Space-time. https://arxiv.org/abs/2605.10424
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