Abstract
We report on the population properties of compact binary mergers inferred from gravitational-wave observations of these systems during the first three LIGO-Virgo observing runs. The Gravitational-Wave Transient Catalog 3 (GWTC-3) contains signals consistent with three classes of binary mergers: binary black hole, binary neutron star, and neutron star-black hole mergers. We infer the binary neutron star merger rate to be between 10 and 1700 Gpc-3 yr-1 and the neutron star-black hole merger rate to be between 7.8 and 140 Gpc-3 yr-1, assuming a constant rate density in the comoving frame and taking the union of 90% credible intervals for methods used in this work. We infer the binary black hole merger rate, allowing for evolution with redshift, to be between 17.9 and 44 Gpc-3 yr-1 at a fiducial redshift (z=0.2). The rate of binary black hole mergers is observed to increase with redshift at a rate proportional to (1+z)κ with κ=2.9-1.8+1.7 for z≲1. Using both binary neutron star and neutron star-black hole binaries, we obtain a broad, relatively flat neutron star mass distribution extending from 1.2-0.2+0.1 to 2.0-0.3+0.3M⊙. We confidently determine that the merger rate as a function of mass sharply declines after the expected maximum neutron star mass, but cannot yet confirm or rule out the existence of a lower mass gap between neutron stars and black holes. We also find the binary black hole mass distribution has localized over- and underdensities relative to a power-law distribution, with peaks emerging at chirp masses of 8.3-0.5+0.3 and 27.9-1.8+1.9M⊙. While we continue to find that the mass distribution of a binary's more massive component strongly decreases as a function of primary mass, we observe no evidence of a strongly suppressed merger rate above approximately 60M⊙, which would indicate the presence of a upper mass gap. Observed black hole spins are small, with half of spin magnitudes below χi≈0.25. While the majority of spins are preferentially aligned with the orbital angular momentum, we infer evidence of antialigned spins among the binary population. We observe an increase in spin magnitude for systems with more unequal-mass ratio. We also observe evidence of misalignment of spins relative to the orbital angular momentum.
Original language | English |
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Article number | 011048 |
Journal | Physical Review X |
Volume | 13 |
Issue number | 1 |
DOIs | |
State | Published - Jan 2023 |
Externally published | Yes |
Funding
Funders | Funder number |
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Council of Scientific and Industrial Research, India | |
Ministry of Education, India | |
Australian Research Council | |
ICTP South American Institute for Fundamental Research | |
National Research Foundation of Korea | |
Narodowe Centrum Nauki | |
Scottish Universities Physics Alliance | |
National Science Foundation | |
Science and Technology Facilities Council | |
Scottish Funding Council | |
Ministerio de Ciencia e Innovación | |
French Lyon Institute of Origins | |
Leverhulme Trust | |
Advanced Technology Center of NAOJ | |
Science and Engineering Research Board | |
Generalitat de Catalunya | |
Instituto Nazionale di Fisica Nucleare | |
Conselleria de Fons Europeus, Universitat i Cultura | |
Department of Science and Technology, Ministry of Science and Technology, India | |
Centre National de la Recherche Scientifique | |
Canada Foundation for Innovation | |
Kavli Foundation | |
Ministerio de Universidades | |
KISTI-GSDC | |
European Commission | |
European Social Fund | |
Russian Foundation for Basic Research | |
U.S. Department of Energy | |
Brazilian Ministry of Science, Technology, and Innovations | |
Agencia Estatal de Investigación | |
Natural Sciences and Engineering Research Council of Canada | |
Research Grants Council, University Grants Committee | |
Academia Sinica | |
Direcció General de Política Universitària i Recerca, Govern Illes Balears | |
Russian Science Foundation | |
Actions de Recherche Concertées and Fonds Wetenschappelijk Onderzoek—Vlaanderen | |
College of Natural Resources and Sciences, Humboldt State University | |
Fundacja na rzecz Nauki Polskiej | |
Hungarian Scientific Research Fund | |
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung | |
Fonds De La Recherche Scientifique - FNRS | |
Conselleria de Innovación, Universidades, Ciencia y Sociedad Digital, Generalitat Valenciana | |
Royal Society | |
Nemzeti Kutatási, Fejlesztési és Innovaciós Alap | |
National Research Foundation | |
European Regional Development Fund | |
University of Tokyo | |
Netherlands Organization for Scientific Research for the construction and operation of the Virgo detector | |
Istituto Nazionale di Fisica Nucleare | |
Ministry of Education, Culture, Sports, Science and Technology | |
National Natural Science Foundation of China | |
Japan Society for the Promotion of Science | 18K03630, 17H06133, JP20H05854, JP17H06361, 20A203, JP17H06364, 26000005, JP17H06358, 20H05639 |
UK Research and Innovation | 104056 |
Ministry of Science and Technology, Taiwan | AS-CDA-105-M06 |
Fundação para a Ciência e a Tecnologia | Incentivo/SAU/LA0001/2013 |