Maximal steered coherence in the background of Schwarzschild space-time
arXiv:2408.12395 · doi:10.1140/epjc/s10052-024-12830-6
Abstract
In the past two decades, the exploration of quantumness within Schwarzschild spacetime has garnered significant interest, particularly regarding the Hawking radiation's impact on quantum correlations and quantum coherence. Building on this foundation, we investigate how Hawking radiation influences maximal steered coherence (MSC)-a crucial measure for gauging the ability to generate coherence through steering. We find that as the Hawking temperature increases, the physically accessible MSC degrade while the unaccessible MSC increase. This observation is attributed to a redistribution of the initial quantum correlations, previously acknowledged by inertial observers, across all bipartite modes. In particular, we find that in limit case that the Hawking temperature tends to infinity, the accessible MSC equals to 1/\sqrt{2} of its initial value, and the unaccessible MSC also equals to the same value. Our findings illuminate the intricate dynamics of quantum information in the vicinity of black holes, suggesting that Hawking radiation plays a pivotal role in reshaping the landscape of quantum coherence and entanglement in curved spacetime. This study not only advances our theoretical understanding of black hole thermodynamics but also opens new avenues for investigating the interface between quantum mechanics and general relativity.
4 pages, 1 figure
References in corpus (9)
- Steering, Entanglement, Nonlocality, and the EPR Paradox
- Entanglement of Dirac fields in non-inertial frames
- Continuous variable entanglement sharing in non-inertial frames
- Redistribution of particle and anti-particle entanglement in non-inertial frames
- Genuine tripartite nonlocality and entanglement in curved spacetime
- Particle and anti-particle bosonic entanglement in non-inertial frames
- Genuine N-partite entanglement and distributed relationships in the background of dilation black holes
- Quantum coherence and distribution of N-partite bosonic fields in noninertial frame
- How the Hawking effect and prepared states affect Entanglement distillability of Dirac fields