The curvature dependence of gravitational-wave tests of General Relativity
Abstract
High-energy extensions to General Relativity modify the Einstein-Hilbert action with higher-order curvature corrections and theory-specific coupling constants. The order of these corrections imprints a universal curvature dependence on observations while the coupling constant controls the deviation strength. In this Letter, we leverage the theory-independent expectation that modifications to the action of a given order in spacetime curvature (Riemann tensor and contractions) lead to observational deviations that scale with the system length-scale to a corresponding power. Focusing on gravitational wave observations, the relevant scale is the binary total mass, and deviations scale as a power of mass related to the action order. For example, arise in effective field theory for cubic and quartic theories respectively. We incorporate this universal scaling into theory-agnostic tests of General Relativity with current gravitational-wave observations, thus enabling constraints on the curvature scaling without compromising the agnostic nature of these tests. This introduces a flexible yet highly interpretable new paradigm for tests of General Relativity with gravitational-wave catalogs.
Keywords
Cite
@article{arxiv.2407.07043,
title = {The curvature dependence of gravitational-wave tests of General Relativity},
author = {Ethan Payne and Maximiliano Isi and Katerina Chatziioannou and Luis Lehner and Yanbei Chen and Will M. Farr},
journal= {arXiv preprint arXiv:2407.07043},
year = {2024}
}
Comments
8 pages, 3 figures