Thermodynamics of Bardeen regular black hole with generalized uncertainty principle
arXiv:2110.11011 · doi:10.1142/S0218271821501285
Abstract
This study explores the emission of massive charged spin-1 particles from the background of Bardeen regular spacetime by the semi-classical method used to study the Hawking radiation spectrum. We employed the Hamilton-Jacobi method and WKB approximation technique with the suitable form of the wave function to solve the Proca field equation. We calculated the tunneling probability of outgoing spin-1 particles and the corresponding thermodynamic temperature. Furthermore, we obtained the modified thermodynamic quantities like temperature, entropy as well as heat capacity by utilizing the quadratic form of generalized uncertainty principle (GUP) and minimal length. In the end, we investigated the local stability as well as phase transitions of the Bardeen black hole in the context of GUP-modified heat capacity.
13 pages, 4 figures
References in corpus (11)
- Charged Fermions Tunnelling from Kerr-Newman Black Holes
- Quantum-corrected black hole thermodynamics to all orders in the Planck length
- Fermion Tunneling from Dynamical Horizons
- On the Hawking radiation as tunneling for a class of dynamical black holes
- Black hole radiation of spin-1 particles in (1+2) dimensions
- Entropy of Reissner-Nordstrom Black Holes with Minimal Length Revisited
- Black hole emission of vector particles in (1+1) dimensions
- Minimal Length Effects on Tunnelling from Spherically Symmetric Black Holes
- Tunneling of Dirac particles from accelerating and rotating black holes
- Charged fermions tunneling from accelerating and rotating black holes
- Hawking radiation of scalar particles from accelerating and rotating black holes