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Recent Developments in Holographic Black Hole Chemistry

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arxiv 2403.02864 v1 pith:3DWPDPD2 submitted 2024-03-05 hep-th gr-qc

classification hep-thgr-qc
keywords blackholechemistrybulkdevelopmentsholographiccorrespondenceenergy
verification ladder T0 review T1 audit T2 compute T3 formal

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One of the major developments in classical black hole thermodynamics is the inclusion of vacuum energy in the form of thermodynamic pressure. Known as Black Hole Chemistry, this subdiscipline has led to the realization that anti de Sitter black holes exhibit a broad variety of phase transitions that are essentially the same as those observed in chemical systems. Since the pressure is given in terms of a negative cosmological constant (which parametrizes the vacuum energy), the holographic interpretation of Black Hole Chemistry has remained unclear. In the last few years there has been considerable progress in developing an exact dictionary between the bulk laws of Black Hole Chemistry and the laws of the dual Conformal Field Theory (CFT). Holographic Black Hole Chemistry is now becoming an established subfield, with a full thermodynamic bulk/boundary correspondence, and an emergent understanding of CFT phase behaviour and its correspondence in the bulk. Here I review these developments, highlighting key advances and briefly discussing future prospects for further research.

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Cited by 2 Pith papers

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    A charged, rotating quantum BTZ black hole is built from the AdS C-metric, and charge or spin is shown to remove the neutral-static case's re-entrant phase transitions, whose critical exponents are computed as (0, 1, 2, 3).

  2. A Self-Consistent Exact Solution from Einstein Gravity: Black Hole in King $\left(2,3,0\right)$ Dark Matter Halos

    gr-qc 2026-07 conditional novelty 4.5 of 10

    An exact Schwarzschild-like black hole embedded in a King dark-matter halo is obtained from Einstein’s equations and shown to enlarge the photon sphere, shadow, and thermodynamic stability region relative to vacuum.

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