The NANOGrav 12.5 yr Data Set: Search for Gravitational Wave Memory

Author:

Agazie GabriellaORCID,Arzoumanian Zaven,Baker Paul T.ORCID,Bécsy BenceORCID,Blecha LauraORCID,Blumer HarshaORCID,Brazier AdamORCID,Brook Paul R.ORCID,Burke-Spolaor SarahORCID,Burnette RandORCID,Case RobinORCID,Casey-Clyde J. AndrewORCID,Charisi MariaORCID,Chatterjee ShamiORCID,Cohen TylerORCID,Cordes James M.ORCID,Cornish Neil J.ORCID,Crawford FronefieldORCID,Cromartie H. ThankfulORCID,DeCesar Megan E.ORCID,DeGan DallasORCID,Demorest Paul B.ORCID,Dolch TimothyORCID,Drachler Brendan,Ellis Justin A.,Ferdman Robert D.ORCID,Ferrara Elizabeth C.ORCID,Fiore WilliamORCID,Fonseca EmmanuelORCID,Freedman Gabriel E.ORCID,Garver-Daniels NateORCID,Gentile Peter A.ORCID,Glaser JosephORCID,Good Deborah C.ORCID,Gültekin KayhanORCID,Hazboun Jeffrey S.ORCID,Jennings Ross J.ORCID,Johnson Aaron D.ORCID,Jones Megan L.ORCID,Kaiser Andrew R.ORCID,Kaplan David L.ORCID,Kelley Luke ZoltanORCID,Key Joey S.ORCID,Laal NimaORCID,Lam Michael T.ORCID,Lamb William G.ORCID,W. Lazio T. Joseph,Lewandowska NataliaORCID,Liu TingtingORCID,Lorimer Duncan R.ORCID,Luo JingORCID,Lynch Ryan S.ORCID,Ma Chung-PeiORCID,Madison Dustin R.ORCID,McEwen AlexanderORCID,McKee James W.ORCID,McLaughlin Maura A.ORCID,Meyers Patrick M.ORCID,Mingarelli Chiara M. F.ORCID,Mitridate AndreaORCID,Ng CherryORCID,Nice David J.ORCID,Ocker Stella KochORCID,Olum Ken D.ORCID,Pennucci Timothy T.ORCID,Pol Nihan S.ORCID,Ransom Scott M.ORCID,Ray Paul S.ORCID,Romano Joseph D.ORCID,Sardesai Shashwat C.ORCID,Schmitz KaiORCID,Siemens XavierORCID,Simon JosephORCID,Siwek Magdalena S.ORCID,Sosa Fiscella Sophia V.ORCID,Spiewak RenéeORCID,Stairs Ingrid H.ORCID,Stinebring Daniel R.ORCID,Stovall KevinORCID,Sun Jerry P.ORCID,Swiggum Joseph K.ORCID,Taylor JacobORCID,Taylor Stephen R.ORCID,Turner Jacob E.ORCID,Unal CanerORCID,Vallisneri MicheleORCID,Vigeland Sarah J.ORCID,Wahl Haley M.ORCID,Witt Caitlin A.ORCID,Young OliviaORCID,

Abstract

Abstract We present the results of a Bayesian search for gravitational wave (GW) memory in the NANOGrav 12.5 yr data set. We find no convincing evidence for any gravitational wave memory signals in this data set. We find a Bayes factor of 2.8 in favor of a model that includes a memory signal and common spatially uncorrelated red noise (CURN) compared to a model including only a CURN. However, further investigation shows that a disproportionate amount of support for the memory signal comes from three dubious pulsars. Using a more flexible red-noise model in these pulsars reduces the Bayes factor to 1.3. Having found no compelling evidence, we go on to place upper limits on the strain amplitude of GW memory events as a function of sky location and event epoch. These upper limits are computed using a signal model that assumes the existence of a common, spatially uncorrelated red noise in addition to a GW memory signal. The median strain upper limit as a function of sky position is approximately 3.3 × 10−14. We also find that there are some differences in the upper limits as a function of sky position centered around PSR J0613−0200. This suggests that this pulsar has some excess noise that can be confounded with GW memory. Finally, the upper limits as a function of burst epoch continue to improve at later epochs. This improvement is attributable to the continued growth of the pulsar timing array.

Funder

National Science Foundation

Publisher

American Astronomical Society

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