Abstract
We consider black hole solutions with electric and magnetic sources in the four-dimensional Einstein-Born-Infeld-AdS theory with spherical, planar and hyperbolic horizon geometries. Exact analytical solutions for the metric function, electric and magnetic fields were obtained and they recover the RN-AdS black hole in the limit \(\beta \rightarrow +\infty \) for spherical horizon in the absence of the magnetic charge. Expressions for temperature, electric and magnetic potential were obtained and they satisfy the first law of the extended black hole thermodynamics, where a negative cosmological constant is associated with thermodynamic pressure. Also, the Born-Infeld vacuum polarization term \(Bd\beta \) was included into the first law in order to satisfy the Smarr relation. Critical behavior of the black hole was examined and condition on electric and magnetic charges were obtained when phase transition appears. Also, the critical ratio and capacity at constant pressure were calculated. Electric and magnetic charges enter into the metric function and thermodynamic quantities symmetrically and thus the presence of the magnetic charge does not bring very significant new features. Finally, we examine the Joule-Thomson expansion if the black hole mass is fixed. The inversion and isenthalpic curves were plotted and the cooling and heating regions were demonstrated. These results recover the Joule-Thomson expansion recently considered for the RN-AdS black hole in the corresponding limit.
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Appendix
Appendix
Graphs on the Fig. 5 illustrate solutions of the first equation of the system (24) and also Eq. (35) depending on parameter \(\beta \) for various other parameters. Graphs on the Fig. 6 demonstrate the dependence of the critical ratio (29) on parameters \(\beta \) and charges \(q_e\), \(q_m\).
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Tataryn, M.B., Stetsko, M.M. Thermodynamics of a static electric-magnetic black hole in Einstein-Born-Infeld-AdS theory with different horizon geometries. Gen Relativ Gravit 53, 72 (2021). https://doi.org/10.1007/s10714-021-02842-y
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DOI: https://doi.org/10.1007/s10714-021-02842-y