Gauge-Invariant Gravitational Wave Polarization in Metric f(R) Gravity with Cosmological Implications
Ramesh Radhakrishnan, David McNutt, Delaram Mirfendereski, Alejandro Pinero, Eric Davis, William Julius, and Gerald Cleaver

TL;DR
This paper presents a gauge-invariant analysis of gravitational wave polarizations in metric f(R) gravity, revealing a scalar massive mode alongside the tensor modes, with implications for cosmology and gravitational wave observations.
Contribution
It develops a fully gauge-invariant framework for analyzing gravitational wave polarizations in metric f(R) gravity, connecting scalar modes to cosmological phenomena.
Findings
Tensor modes remain as in General Relativity with two polarizations.
Scalar sector includes a massive breathing-longitudinal mode.
The framework links gravitational wave polarization signatures to cosmological observables.
Abstract
We develop a fully gauge invariant analysis of gravitational wave polarizations in metric f(R) gravity with a particular focus on the modified Starobinsky model, whose constant curvature solution provides a natural deSitter background for both early and late time cosmology. Linearizing the field equations around this background, we derive the Klein Gordon equation for the curvature perturbation and show that the scalar propagating mode acquires a mass, highlighting how the same scalar degree of freedom governs inflationary dynamics at high curvature and the propagation of gravitational waves in the current accelerating Universe. Using the scalar vector tensor (SVT) decomposition and a decomposition of the perturbed Ricci tensor, we obtain a set of fully gauge invariant propagation equations that isolate the contributions of the scalar, vector, and tensor modes in the presence of matter.…
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Taxonomy
TopicsCosmology and Gravitation Theories · Black Holes and Theoretical Physics · Noncommutative and Quantum Gravity Theories
