TY - JOUR
T1 - The NANOGrav 15 yr Data Set
T2 - Harmonic Analysis of the Pulsar Angular Correlations
AU - The NANOGrav Collaboration
AU - Agazie, Gabriella
AU - Anumarlapudi, Akash
AU - Archibald, Anne M.
AU - Arzoumanian, Zaven
AU - Baier, Jeremy G.
AU - Baker, Paul T.
AU - Bécsy, Bence
AU - Blecha, Laura
AU - Boddy, Kimberly K.
AU - Brazier, Adam
AU - Brook, Paul R.
AU - Burke-Spolaor, Sarah
AU - Burnette, Rand
AU - Casey-Clyde, J. Andrew
AU - Charisi, Maria
AU - Chatterjee, Shami
AU - Cohen, Tyler
AU - Cordes, James M.
AU - Cornish, Neil J.
AU - Crawford, Fronefield
AU - Cromartie, H. Thankful
AU - Crowter, Kathryn
AU - DeCesar, Megan E.
AU - Demorest, Paul B.
AU - Deng, Heling
AU - Dey, Lankeswar
AU - Dolch, Timothy
AU - Ferrara, Elizabeth C.
AU - Fiore, William
AU - Fonseca, Emmanuel
AU - Freedman, Gabriel E.
AU - Gardiner, Emiko C.
AU - Garver-Daniels, Nate
AU - Gentile, Peter A.
AU - Gersbach, Kyle A.
AU - Glaser, Joseph
AU - Good, Deborah C.
AU - Gültekin, Kayhan
AU - Hazboun, Jeffrey S.
AU - Jennings, Ross J.
AU - Johnson, Aaron D.
AU - Jones, Megan L.
AU - Kaplan, David L.
AU - Kelley, Luke Zoltan
AU - Kerr, Matthew
AU - Key, Joey S.
AU - Laal, Nima
AU - Lam, Michael T.
AU - Lamb, William G.
AU - Lewandowska, Natalia
N1 - Publisher Copyright: © 2025. The Author(s). Published by the American Astronomical Society.
PY - 2025/5/20
Y1 - 2025/5/20
N2 - Pulsar timing array observations have found evidence for an isotropic gravitational-wave background with the Hellings-Downs angular correlations between pulsar pairs. This interpretation hinges on the measured shape of the angular correlations, which is predominantly quadrupolar under general relativity. Here we explore a more flexible parameterization: we expand the angular correlations into a sum of Legendre polynomials and use a Bayesian analysis to constrain their coefficients with the 15 yr pulsar timing data set collected by the North American Nanohertz Observatory for Gravitational Waves (NANOGrav). When including Legendre polynomials with multipoles ℓ ≥ 2, we only find a significant signal in the quadrupole with an amplitude consistent with general relativity and nonzero at the ∼95% confidence level and a Bayes factor of 200. When we include multipoles ℓ ≤ 1, the Bayes factor evidence for quadrupole correlations decreases by more than an order of magnitude due to evidence for a monopolar signal at approximately 4 nHz, which has also been noted in previous analyses of the NANOGrav 15 yr data. Further work needs to be done in order to better characterize the properties of this monopolar signal and its effect on the evidence for quadrupolar angular correlations.
AB - Pulsar timing array observations have found evidence for an isotropic gravitational-wave background with the Hellings-Downs angular correlations between pulsar pairs. This interpretation hinges on the measured shape of the angular correlations, which is predominantly quadrupolar under general relativity. Here we explore a more flexible parameterization: we expand the angular correlations into a sum of Legendre polynomials and use a Bayesian analysis to constrain their coefficients with the 15 yr pulsar timing data set collected by the North American Nanohertz Observatory for Gravitational Waves (NANOGrav). When including Legendre polynomials with multipoles ℓ ≥ 2, we only find a significant signal in the quadrupole with an amplitude consistent with general relativity and nonzero at the ∼95% confidence level and a Bayes factor of 200. When we include multipoles ℓ ≤ 1, the Bayes factor evidence for quadrupole correlations decreases by more than an order of magnitude due to evidence for a monopolar signal at approximately 4 nHz, which has also been noted in previous analyses of the NANOGrav 15 yr data. Further work needs to be done in order to better characterize the properties of this monopolar signal and its effect on the evidence for quadrupolar angular correlations.
UR - https://www.scopus.com/pages/publications/105007105399
U2 - 10.3847/1538-4357/adc997
DO - 10.3847/1538-4357/adc997
M3 - Article
SN - 0004-637X
VL - 985
JO - Astrophysical Journal
JF - Astrophysical Journal
IS - 1
M1 - 99
ER -