×

Gravitational analysis of neutral regular black hole in Rastall gravity. (English) Zbl 1443.83042

Summary: This paper is devoted to the tunneling radiation and quantum gravity effect on tunneling radiation of neutral regular black hole in Rastall gravity. We analyzed the tunneling radiation and Hawking temperature of neutral regular black hole by applying the Hamilton-Jacobi ansatz phenomenon. Lagrangian wave equation have been investigated by generalized uncertainty principle (GUP), using the WKB-approximation and calculated the tunneling rate as well as temperature. Furthermore, we analyzed the temperature of this neutral regular black hole in the presence of gravity. The stability and instability of neutral regular black hole are also analyzed.

MSC:

83D05 Relativistic gravitational theories other than Einstein’s, including asymmetric field theories
83C57 Black holes
81Q20 Semiclassical techniques, including WKB and Maslov methods applied to problems in quantum theory
81U26 Tunneling in quantum theory
Full Text: DOI

References:

[1] Tawfik, A., J. Cosmol. Astropart. Phys.1307, 040 (2013).
[2] Tawfik, A. N. and Diab, A. M., Int. J. Mod. Phys. D23, 1430025 (2014). · Zbl 1305.81005
[3] Anacleto, M. A., Brito, F. A. and Passos, E., Phys. Lett. B749, 181 (2015). · Zbl 1364.83016
[4] Anacleto, M. A., Bazeia, D., Brito, F. A. and Mota-Silva, J. C., Adv. High Energy Phys.2016, 8465759 (2016). · Zbl 1375.83022
[5] Javed, W., Abbas, G. and Ali, R., Eur. Phys. J. C77, 296 (2017).
[6] Li, X. Q. and Chen, G. R., Phys. Lett. B751, 34 (2015). · Zbl 1360.83038
[7] Casadio, R., Nicolini, P. and da Rocha, R., Class. Quantum Grav.35, 185001 (2018). · Zbl 1409.83088
[8] Övgün, A., Javed, W. and Ali, R., Adv. High Energy Phys.2018, 11 (2018). · Zbl 1403.81021
[9] Javed, W., Ali, R. and Abbas, G., Can. J. Phys.97, 176 (2018).
[10] Haldar, A. and Biswas, R., Gen. Relat. Gravit.51, 72 (2019). · Zbl 1419.83036
[11] Ali, R., Bamba, K. and Shah, S. A. A., Symmetry631, 11 (2019).
[12] Javed, W., Ali, R., Babar, R. and Övgün, A., Eur. Phys. J. Plus134, 511 (2019).
[13] Javed, W., Ali, R., Babar, R. and Övgün, A., Chinese Phys. C44, 015104 (2020).
[14] Övgün, A. and Jusufi, K., Eur. Phys. J. Plus132, 298 (2017).
[15] Javed, W. and Babar, R., Chinese J. Phys.61, 138 (2019).
[16] Babar, R., Javed, W. and Övgün, A., Mod. Phys. Lett. A35, 2050104 (2020).
[17] Lin, K. and Qian, W. L., Chinese Phys. C43, 083106 (2019).
[18] Övgün, A. and Jusufi, K., Eur. Phys. J. Plus131, 177 (2016).
This reference list is based on information provided by the publisher or from digital mathematics libraries. Its items are heuristically matched to zbMATH identifiers and may contain data conversion errors. In some cases that data have been complemented/enhanced by data from zbMATH Open. This attempts to reflect the references listed in the original paper as accurately as possible without claiming completeness or a perfect matching.