The IR-Completion of Gravity: What happens at Hubble Scales?
Federico Piazza (Perimeter Institute)

TL;DR
This paper explores an IR modification of gravity inspired by a new version of the Equivalence Principle, showing tiny corrections at large scales that could influence cosmological acceleration.
Contribution
It proposes an IR-completion of General Relativity based on a conjectured vacuum energy behavior, introducing a scalar field correction that affects cosmological distances.
Findings
Corrections to gravity are very small and effective at scales comparable to the inverse curvature.
The model predicts a positive acceleration in cosmological expansion.
Distance measures between observers are affected at large scales, aligning with observed cosmic acceleration.
Abstract
We have recently proposed an "Ultra-Strong" version of the Equivalence Principle (EP) that is not satisfied by standard semiclassical gravity. In the theory that we are conjecturing, the vacuum expectation value of the (bare) energy momentum tensor is exactly the same as in flat space: quartically divergent with the cut-off and with no spacetime dependent (subleading) ter ms. The presence of such terms seems in fact related to some known difficulties, such as the black hole information loss and the cosmological constant problem. Since the terms that we want to get rid of are subleading in the high-momentum expansion, we attempt to explore the conjectured theory by "IR-completing" GR. We consider a scalar field in a flat FRW Universe and isolate the first IR-correction to its Fourier modes operators that kills the quadratic (next to leading) time dependent divergence of the stress energy…
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