Search For Electron-Antineutrinos Associated With Gravitational-Wave Events GW150914, GW151012, GW151226, GW170104, GW170608, GW170814, and GW170817 at Daya Bay
F. P. An, A. B. Balantekin, H. R. Band, M. Bishai, S. Blyth, G. F., Cao, J. Cao, J. F. Chang, Y. Chang, H. S. Chen, S. M. Chen, Y. Chen, Y. X., Chen, J. Cheng, Z. K. Cheng, J. J. Cherwinka, M. C. Chu, J. P. Cummings, O., Dalager, F. S. Deng, Y. Y. Ding, M. V. Diwan, T. Dohnal

TL;DR
This study searched for electron-antineutrino signals coinciding with multiple gravitational-wave events using data from the Daya Bay experiment, finding no significant neutrino signals and setting upper limits on neutrino fluence.
Contribution
First comprehensive search for electron-antineutrinos associated with GW events at Daya Bay, establishing upper limits on neutrino fluence in the absence of detected signals.
Findings
No neutrino signals detected coinciding with GW events.
Established upper limits on neutrino fluence for various spectra.
Results constrain models of neutrino emission from GW sources.
Abstract
Providing a possible connection between neutrino emission and gravitational-wave (GW) bursts is important to our understanding of the physical processes that occur when black holes or neutron stars merge. In the Daya Bay experiment, using data collected from December 2011 to August 2017, a search has been performed for electron-antineutrino signals coinciding with detected GW events, including GW150914, GW151012, GW151226, GW170104, GW170608, GW170814, and GW170817. We used three time windows of , , and relative to the occurrence of the GW events, and a neutrino energy range of 1.8 to 100 MeV to search for correlated neutrino candidates. The detected electron-antineutrino candidates are consistent with the expected background rates for all the three time windows. Assuming monochromatic spectra, we found upper limits (90%…
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