Running boundary actions, Asymptotic Safety, and black hole thermodynamics
D. Becker, M. Reuter

TL;DR
This paper extends the Asymptotic Safety framework in Quantum Einstein Gravity to include boundary effects, analyzing how quantum gravity influences black hole thermodynamics, notably entropy and stability at Planck scales.
Contribution
It introduces a method to incorporate boundary terms into the RG analysis of quantum gravity and explores their impact on black hole thermodynamics.
Findings
Boundary and bulk Newton constants run oppositely under RG flow.
Quantum effects can cause black hole entropy to vanish at Planck scales.
Black hole specific heat becomes positive near Planckian regimes.
Abstract
Previous explorations of the Asymptotic Safety scenario in Quantum Einstein Gravity (QEG) by means of the effective average action and its associated functional renormalization group (RG) equation assumed spacetime manifolds which have no boundaries. Here we take a first step towards a generalization for non-trivial boundaries, restricting ourselves to action functionals which are at most of second order in the derivatives acting on the metric. We analyze two examples of truncated actions with running boundary terms: full fledged QEG within the single-metric Einstein-Hilbert (EH) truncation, augmented by a scale dependent Gibbons-Hawking (GH) surface term, and a bi-metric truncation for gravity coupled to scalar matter fields. The latter contains 17 running couplings, related to both bulk and boundary terms, whose beta-functions are computed in the induced gravity approximation. We find…
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