Generalized Entropy Implies Varying-G: Horizon Area Dependent Field Equations and Black Hole-Cosmology Coupling
Hengxin Lu, Sofia Di Gennaro, Yen Chin Ong

TL;DR
This paper explores how generalized entropy modifies Einstein's equations, leading to a horizon area-dependent gravitational constant, and discusses implications for black hole thermodynamics and cosmological coupling.
Contribution
It introduces a framework where generalized entropy results in a varying effective gravitational constant dependent on horizon area, linking thermodynamics and modified gravity.
Findings
Generalized entropy implies a horizon area-dependent gravitational constant.
Quantum corrections to entropy correspond to a running gravitational constant.
Area-dependent G can couple black hole and cosmological dynamics.
Abstract
When the Bekenstein-Hawking entropy is modified, ambiguity often arises concerning whether the Hawking temperature or the thermodynamic mass should be modified. The common practice, however, is to keep the black hole solution the same as that in general relativity. On the other hand, if Jacobson's method of deriving Einstein equations from thermodynamic is valid in the general settings, then given a generalized entropy one should first derive the corresponding modified gravity, and then look for the compatible black hole solution before investigating its thermodynamics. We comment on some properties and subtleties in this approach. In particular, we point out that generically generalized entropy would lead to a varying effective gravitational "constant" theory, where depends on the horizon area. We discuss in what ways such theories are discernible from general relativity…
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Taxonomy
TopicsCosmology and Gravitation Theories · Black Holes and Theoretical Physics · Geophysics and Gravity Measurements
