Holographic fluids from 5D dilaton gravity
Metadatos
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Materia
Black Holes Effective Field Theories Gauge-Gravity Correspondence
Date
2024-08-09Referencia bibliográfica
Fichet, S., Megías, E. & Quirós, M. J. High Energ. Phys. 2024, 77 (2024). [https://doi.org/10.1007/JHEP08(2024)077]
Patrocinador
Project PID2020-114767GB-I00 and by the Ramón y Cajal Program under Grant RYC-2016-20678 funded by MCIN/AEI/10.13039/501100011033 and by “FSE Investing in your future”; Junta de Andalucía under Grant FQM-225; “Prórrogas de Contratos Ramón y Cajal” Program of the University of Granada; Spanish MICIN under Grant PID2020-115845GB-I00; Catalan Government under Grant 2021SGR00649; CERCA program of the Generalitat de CatalunyaRésumé
We study a solvable class of five-dimensional dilaton gravity models that continuously
interpolate between anti-de Sitter (AdS5), linear dilaton (LD5) and positively curved
spacetimes as a function of a continuous parameter ν. The dilaton vacuum expectation value
is set by a potential localized on a flat brane. We chart the elementary properties of these
backgrounds for any admissible ν, and determine stability conditions of the brane-dilaton
system. We find that the spectrum of metric fluctuations can be either continuous or discrete.
It features a massless graviton mode confined between the brane and the curvature
singularity, and a massive radion mode tied to brane-dilaton stability. We show that, in
the presence of a bulk black hole, the holographic theory living on the brane features a
perfect fluid. The equation of state of the holographic fluid interpolates between radiation,
pressureless matter and vacuum energy as a function of ν. This extends earlier findings
on holographic fluids. Our results suggest that the thermodynamics of the fluid mirrors
precisely the thermodynamics of the bulk black hole.