Current and future constraints on cosmology and modified gravitational wave friction from binary black holes
Konstantin Leyde, Simone Mastrogiovanni, Dani\`ele A. Steer, Eric, Chassande-Mottin, Christos Karathanasis

TL;DR
This study uses binary black hole gravitational wave data to test general relativity and constrain cosmological parameters, finding GR consistent with observations and forecasting improved constraints with future detections.
Contribution
It introduces a joint analysis method combining BBH population models with modified gravity parameters using GW data, providing new constraints and forecasts.
Findings
GR is favored over modified gravity models with current GW data
Posteriors for modified gravity parameters are consistent with GR at 90% confidence
Forecasts show significant improvements in constraining modified gravity with more detections
Abstract
Gravitational wave (GW) standard sirens are well-established probes with which one can measure cosmological parameters, and are complementary to other probes like the cosmic microwave background or supernovae standard candles. Here we focus on dark GW sirens, specifically binary black holes (BBHs) for which there is only GW data. Our approach relies on the assumption of a source frame mass model for the BBH distribution, and we consider four models that are representative of the BBH population observed so far. In addition to inferring cosmological and mass model parameters, we use dark sirens to test modified gravity theories. These theories often predict different GW propagation equations on cosmological scales, leading to a different GW luminosity distance which in some cases can be parametrized by variables and . General relativity (GR) corresponds to . We…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Cosmology and Gravitation Theories · Relativity and Gravitational Theory
