Quantum tunneling from Schwarzschild black hole in non-commutative gauge theory of gravity

被引:1
|
作者
Touati, Abdellah [1 ]
Slimane, Zaim [1 ]
机构
[1] Univ Batna 1, Fac Matter Sci, Dept Phys, Batna 05000, Algeria
关键词
Quantum tunneling process; Non-commutative gauge theory; Schwarzschild black hole; Correlation function; HAWKING RADIATION; ENTROPY; THERMODYNAMICS;
D O I
10.1016/j.physletb.2023.138335
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
In this letter, we present the first study of Hawking radiation as a tunneling process within the framework of non-commutative (NC) gauge theory of gravity. First, we reconstruct the non-commutative Schwarzschild black hole (NC SBH) within the gauge theory of gravity, employing the Seiberg-Witten (SW) map and the star product. Then, we compute the emission spectrum of outgoing massless particles using the quantum tunneling mechanism. In the first scenario, we calculate the tunneling rate of massless particles crossing the event horizon of the NC SBH with lower frequencies. Our results reveal pure thermal radiation. Notably, we find that the Hawking temperature remains consistent in both the classical thermodynamics and the quantum tunneling approach, suggesting equivalence between these two approaches in NC spacetime. However, in the case of massless particle emission with higher frequencies, we account for energy conservation resulting in the tunneling rate to deviate from pure thermal radiation. This tunneling rate remains consistent with an underlying unitary quantum theory. We establish a relationship between this deviation and the change in the black hole entropy, revealing a logarithmic correction to the entropy within this geometry. Furthermore, we demonstrate that noncommutativity enhances the correlations between two successively emitted particles. Additionally, we determine the NC density number of particle emission and conclude by discussing the implications of our findings.
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页数:9
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