TY - JOUR
T1 - GW230814
T2 - Investigation of a Loud Gravitational-wave Signal Observed with a Single Detector
AU - The LIGO Scientific Collaboration, the Virgo Collaboration, and the KAGRA Collaboration
AU - Abac, A. G.
AU - Abouelfettouh, I.
AU - Acernese, F.
AU - Ackley, K.
AU - Adamcewicz, C.
AU - Adhicary, S.
AU - Adhikari, D.
AU - Adhikari, N.
AU - Adhikari, R. X.
AU - Adkins, V. K.
AU - Afroz, S.
AU - Agapito, A.
AU - Agarwal, D.
AU - Agathos, M.
AU - Aggarwal, N.
AU - Aggarwal, S.
AU - Aguiar, O. D.
AU - Ahrend, I. L.
AU - Aiello, L.
AU - Ain, A.
AU - Ajith, P.
AU - Akutsu, T.
AU - Albanesi, S.
AU - Ali, W.
AU - Al-Kershi, S.
AU - Alléné, C.
AU - Allocca, A.
AU - Al-Shammari, S.
AU - Altin, P. A.
AU - Alvarez-Lopez, S.
AU - Amar, W.
AU - Amarasinghe, O.
AU - Amato, A.
AU - Amicucci, F.
AU - Amra, C.
AU - Ananyeva, A.
AU - Anderson, S. B.
AU - Anderson, W. G.
AU - Andia, M.
AU - Ando, M.
AU - Andrés-Carcasona, M.
AU - Andrić, T.
AU - Anglin, J.
AU - Ansoldi, S.
AU - Antelis, J. M.
AU - Antier, S.
AU - Aoumi, M.
AU - Favata, M.
AU - Ghosh, Shaon
AU - Martin, R. M.
N1 - Publisher Copyright:
© 2026. The Author(s). Published by the American Astronomical Society. Original content from this work may be used under the terms of the https://creativecommons.org/licenses/by/4.0/. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
PY - 2026/6/20
Y1 - 2026/6/20
N2 - GW230814, detected by the LIGO Livingston observatory with a signal-to-noise ratio of 42.4, represents the loudest gravitational-wave signal in the GWTC-4.0 catalog. Its source is consistent with a binary black hole coalescence with component masses (Formula presented) m1=33.7−2.2+2.9M⊙ and (Formula presented) m2=28.2−3.1+2.2M⊙ and a small effective inspiral spin (Formula presented) χeff=−0.01−0.07+0.06. The high signal-to-noise ratio enabled us to detect an ℓ = ∣m∣ = 4 mode in the inspiral–merger–ringdown signal for the first time (with Bayes factor ≈10), as well as enabling a range of tests of consistency between theoretical predictions and the observed waveform. While most of these tests show agreement with theoretical predictions, there are suggestions of minor deviations in the ringdown phase. Simulations that incorporate general relativity and realistic detector noise reproduce similar deviations, suggesting that they do not constitute evidence for a breakdown of general relativity. The observation of GW230814 demonstrates that the unprecedented sensitivity of the detectors enables highly significant detections with a single observatory. However, without corroborating data from a multidetector network, the ability to draw rigorous conclusions about fundamental physics remains severely limited.
AB - GW230814, detected by the LIGO Livingston observatory with a signal-to-noise ratio of 42.4, represents the loudest gravitational-wave signal in the GWTC-4.0 catalog. Its source is consistent with a binary black hole coalescence with component masses (Formula presented) m1=33.7−2.2+2.9M⊙ and (Formula presented) m2=28.2−3.1+2.2M⊙ and a small effective inspiral spin (Formula presented) χeff=−0.01−0.07+0.06. The high signal-to-noise ratio enabled us to detect an ℓ = ∣m∣ = 4 mode in the inspiral–merger–ringdown signal for the first time (with Bayes factor ≈10), as well as enabling a range of tests of consistency between theoretical predictions and the observed waveform. While most of these tests show agreement with theoretical predictions, there are suggestions of minor deviations in the ringdown phase. Simulations that incorporate general relativity and realistic detector noise reproduce similar deviations, suggesting that they do not constitute evidence for a breakdown of general relativity. The observation of GW230814 demonstrates that the unprecedented sensitivity of the detectors enables highly significant detections with a single observatory. However, without corroborating data from a multidetector network, the ability to draw rigorous conclusions about fundamental physics remains severely limited.
KW - Black hole physics (159)
KW - Compact binary stars (283)
KW - Gravitational wave astronomy (675)
KW - Gravitational wave sources (677)
KW - Gravitational waves (678)
KW - LIGO (920)
KW - Quasinormal modes (1320)
UR - https://www.scopus.com/pages/publications/105042165225
U2 - 10.3847/2041-8213/ae2ad3
DO - 10.3847/2041-8213/ae2ad3
M3 - Article
AN - SCOPUS:105042165225
SN - 2041-8205
VL - 1004
JO - Astrophysical Journal Letters
JF - Astrophysical Journal Letters
IS - 2
M1 - L23
ER -