Standard sirens with a running Planck mass
Abstract
We consider the effect of a time-varying Planck mass on the propagation of gravitational waves (GWs). A running Planck mass arises naturally in several modified gravity theories, and here we focus on those that carry an additional dark energy field responsible for the late-time accelerated expansion of the universe, yet--like general relativity (GR)--propagate only two GW polarizations, both traveling at the speed of light. Because a time-varying Planck mass affects the amplitude of the GWs and therefore the inferred distance to the source, standard siren measurements of are degenerate with the parameter characterizing the time-varying Planck mass, where corresponds to GR with a constant Planck mass. The effect of non-zero will have a noticeable impact on GWs emitted by binary neutron stars (BNSs) at the sensitivities and distances observable by ground-based GW detectors such as advanced LIGO and A+, implying that standard siren measurements can provide joint constraints on and . Assuming a CDM evolution of the universe and taking Planck's measurement of as a prior, we find that GW170817 constrains ( credibility). We also discuss forecasts, finding that if we assume is known independently, then 100 BNS events detected by advanced LIGO can constrain to within . This is comparable to the current best constraints from cosmology. Similarly, for 100 LIGO A+ BNS detections, it is possible to constrain to . When analyzing joint and constraints we find that LIGO A+ events are needed to constrain to accuracy. Finally, we discuss the possibility of a nonzero value of biasing standard siren measurements from 100 LIGO A+ detections, and find that could bias by 3-4 too low if we incorrectly assume .
Keywords
Cite
@article{arxiv.1901.03321,
title = {Standard sirens with a running Planck mass},
author = {Macarena Lagos and Maya Fishbach and Philippe Landry and Daniel E. Holz},
journal= {arXiv preprint arXiv:1901.03321},
year = {2019}
}
Comments
Minor changes and new references