4.7 Article

Constraints on Einstein-dilation-Gauss-Bonnet gravity from black hole-neutron star gravitational wave events

Journal

PHYSICAL REVIEW D
Volume 105, Issue 6, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.105.064001

Keywords

-

Funding

  1. Government of Canada through the Department of Innovation, Science and Economic Development Canada
  2. Province of Ontario through the Ministry of Colleges and Universities
  3. Owens Family Foundation
  4. NSF [PHY-1806776]
  5. NASA [80NSSC20K0523]
  6. Sloan Foundation
  7. COST Action [GWverse CA16104]
  8. JSPS KAKENHI [JP17H06358]
  9. NSF's LIGO Laboratory - National Science Foundation
  10. United States National Science Foundation (NSF)
  11. Max-Planck-Society (MPS)
  12. State of Niedersachsen/Germany
  13. Australian Research Council
  14. French Centre National de Recherche Scientifique (CNRS)
  15. Italian Istituto Nazionale di Fisica Nucleare (INFN)
  16. Dutch Nikhef
  17. European Gravitational Observatory (EGO)
  18. Science and Technology Facilities Council (STFC) of the United Kingdom

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In this paper, the authors focus on testing the Einstein-dilation Gauss-Bonnet gravity theory using recent gravitational wave observations. They derive upper bounds on the coupling constant of the theory by analyzing neutron star black hole binaries and binary black hole events. The authors also investigate the impact of higher-order corrections to the waveform phase on the bounds.
Recent gravitational wave observations allow us to probe gravity in the strong and dynamical field regime. In this paper, we focus on testing Einstein-dilation Gauss-Bonnet gravity which is motivated by string theory. In particular, we use two new neutron star black hole binaries (GW200105 and GW200115). We also consider GW190814 which is consistent with both a binary black hole and a neutron star black hole binary. Adopting the leading post-Newtonian correction and carrying out a Bayesian Markov-chain Monte Carlo analysis, we derive the 90% credible upper bound on the coupling constant of the theory as root alpha(GB) less than or similar to 1.33 km, whose consistency is checked with an independent Fisher analysis. This bound is alpha GB stronger than the bound obtained in previous literature by combining selected binary black hole events in GWTC-1 and GWTC-2 catalogs. We also derive a combined bound of root alpha(GB) less than or similar to 1.18 km by stacking GW200105, GW200115, GW190814, and selected binary black hole events. In order to check the validity of the effect of higher post-Newtonian terms, we derive corrections to the waveform phase up to second post-Newtonian order by mapping results in scalar-tensor theories to Einstein-dilation Gauss-Bonnet gravity. We find that such higher-order terms improve the bounds by 14.5% for GW200105 and 6.9% for GW200115, respectively.

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