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Erschienen in: Quantum Information Processing 1/2018

01.01.2018

How the Hawking radiation affect quantum Fisher information of Dirac particles in the background of a Schwarzschild black hole

verfasst von: ChunYu Huang, Wen-chao Ma, Dong Wang, Liu Ye

Erschienen in: Quantum Information Processing | Ausgabe 1/2018

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Abstract

In this work, the effect of Hawking radiation on the quantum Fisher information (QFI) of Dirac particles is investigated in the background of a Schwarzschild black hole. Interestingly, it has been verified that the QFI with respect to the weight parameter \(\theta \) of a target state is always independent of the Hawking temperature T. This implies that if we encode the information on the weight parameter, then we can affirm that the corresponding accuracy of the parameter estimation will be immune to the Hawking effect. Besides, it reveals that the QFI with respect to the phase parameter \(\phi \) exhibits a decay behavior with the increase in the Hawking temperature T and converges to a nonzero value in the limit of infinite Hawking temperature T. Remarkably, it turns out that the function \(F_\phi \) on \(\theta =\pi \big /4\) symmetry was broken by the influence of the Hawking radiation. Finally, we generalize the case of a three-qubit system to a case of a N-qubit system, i.e., \(|\psi \rangle _{1,2,3,\ldots ,N} =(\cos \theta | 0 \rangle ^{\otimes N}+\sin \theta \mathrm{e}^{i\phi }| 1 \rangle ^{\otimes N})\) and obtain an interesting result: the number of particles in the initial state does not affect the QFI \(F_\theta \), nor the QFI \(F_\phi \). However, with the increasing number of particles located near the event horizon, \(F_\phi \) will be affected by Hawking radiation to a large extent, while \(F_\theta \) is still free from disturbance resulting from the Hawking effects.

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Metadaten
Titel
How the Hawking radiation affect quantum Fisher information of Dirac particles in the background of a Schwarzschild black hole
verfasst von
ChunYu Huang
Wen-chao Ma
Dong Wang
Liu Ye
Publikationsdatum
01.01.2018
Verlag
Springer US
Erschienen in
Quantum Information Processing / Ausgabe 1/2018
Print ISSN: 1570-0755
Elektronische ISSN: 1573-1332
DOI
https://doi.org/10.1007/s11128-017-1779-4

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