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Tests of general relativity with the binary black hole signals from the LIGO-Virgo catalog GWTC-1

  • (The LIGO Scientific Collaboration and the Virgo Collaboration)
  • California Institute of Technology
  • Louisiana State University
  • Inter-University Centre for Astronomy and Astrophysics India
  • University of Salerno
  • National Institute for Nuclear Physics
  • Monash University
  • National Science Foundation
  • Max Planck Institute for Gravitational Physics (Albert Einstein Institute)
  • Leibniz University Hannover
  • University of Cambridge
  • University of Birmingham
  • Massachusetts Institute of Technology
  • Instituto Nacional de Pesquisas Espaciais
  • Gran Sasso Science Institute
  • Tata Institute of Fundamental Research
  • University of Illinois at Urbana-Champaign
  • University of Pisa
  • University of Valencia
  • Australian National University
  • Institut de Physique des 2 Infinis de Lyon
  • University of Wisconsin-Milwaukee
  • University of Strathclyde
  • Université Paris-Saclay
  • California State University Fullerton
  • Université de Paris
  • European Gravitational Observatory
  • SPIC Science Foundation
  • University of Rome Tor Vergata
  • Université Grenoble Alpes
  • Embry-Riddle Aeronautical University
  • Montclair State University
  • National Institute for Subatomic Physics
  • Korea Institute of Science and Technology Information
  • University of Glasgow

Research output: Contribution to journalArticlepeer-review

Abstract

The detection of gravitational waves by Advanced LIGO and Advanced Virgo provides an opportunity to test general relativity in a regime that is inaccessible to traditional astronomical observations and laboratory tests. We present four tests of the consistency of the data with binary black hole gravitational waveforms predicted by general relativity. One test subtracts the best-fit waveform from the data and checks the consistency of the residual with detector noise. The second test checks the consistency of the low- and high-frequency parts of the observed signals. The third test checks that phenomenological deviations introduced in the waveform model (including in the post-Newtonian coefficients) are consistent with 0. The fourth test constrains modifications to the propagation of gravitational waves due to a modified dispersion relation, including that from a massive graviton. We present results both for individual events and also results obtained by combining together particularly strong events from the first and second observing runs of Advanced LIGO and Advanced Virgo, as collected in the catalog GWTC-1. We do not find any inconsistency of the data with the predictions of general relativity and improve our previously presented combined constraints by factors of 1.1 to 2.5. In particular, we bound the mass of the graviton to be mg≤4.7×10-23 eV/c2 (90% credible level), an improvement of a factor of 1.6 over our previously presented results. Additionally, we check that the four gravitational-wave events published for the first time in GWTC-1 do not lead to stronger constraints on alternative polarizations than those published previously.

Original languageEnglish
Article number104036
JournalPhysical Review D
Volume100
Issue number10
DOIs
StatePublished - 20 Nov 2019
Externally publishedYes

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