The NANOGrav 11-Year Data Set: Limits on Gravitational Waves from Individual Supermassive Black Hole Binaries
Abstract
Observations indicate that nearly all galaxies contain supermassive black holes (SMBHs) at their centers. When galaxies merge, their component black holes form SMBH binaries (SMBHBs), which emit low-frequency gravitational waves (GWs) that can be detected by pulsar timing arrays (PTAs). We have searched the recently-released North American Nanohertz Observatory for Gravitational Waves (NANOGrav) 11-year data set for GWs from individual SMBHBs in circular orbits. As we did not find strong evidence for GWs in our data, we placed 95\% upper limits on the strength of GWs from such sources as a function of GW frequency and sky location. We placed a sky-averaged upper limit on the GW strain of at nHz. We also developed a technique to determine the significance of a particular signal in each pulsar using ``dropout' parameters as a way of identifying spurious signals in measurements from individual pulsars. We used our upper limits on the GW strain to place lower limits on the distances to individual SMBHBs. At the most-sensitive sky location, we ruled out SMBHBs emitting GWs with nHz within 120 Mpc for , and within 5.5 Gpc for . We also determined that there are no SMBHBs with emitting GWs in the Virgo Cluster. Finally, we estimated the number of potentially detectable sources given our current strain upper limits based on galaxies in Two Micron All-Sky Survey (2MASS) and merger rates from the Illustris cosmological simulation project. Only 34 out of 75,000 realizations of the local Universe contained a detectable source, from which we concluded it was unsurprising that we did not detect any individual sources given our current sensitivity to GWs.
Keywords
Cite
@article{arxiv.1812.11585,
title = {The NANOGrav 11-Year Data Set: Limits on Gravitational Waves from Individual Supermassive Black Hole Binaries},
author = {K. Aggarwal and Z. Arzoumanian and P. T. Baker and A. Brazier and M. R. Brinson and P. R. Brook and S. Burke-Spolaor and S. Chatterjee and J. M. Cordes and N. J. Cornish and F. Crawford and K. Crowter and H. T. Cromartie and M. DeCesar and P. B. Demorest and T. Dolch and J. A. Ellis and R. D. Ferdman and E. Ferrara and E. Fonseca and N. Garver-Daniels and P. Gentile and J. S. Hazboun and A. M. Holgado and E. A. Huerta and K. Islo and R. Jennings and G. Jones and M. L. Jones and A. R. Kaiser and D. L. Kaplan and L. Z. Kelley and J. S. Key and M. T. Lam and T. J. W. Lazio and L. Levin and D. R. Lorimer and J. Luo and R. S. Lynch and D. R. Madison and M. A. McLaughlin and S. T. McWilliams and C. M. F. Mingarelli and C. Ng and D. J. Nice and T. T. Pennucci and N. S. Pol and S. M. Ransom and P. S. Ray and X. Siemens and J. Simon and R. Spiewak and I. H. Stairs and D. R. Stinebring and K. Stovall and J. Swiggum and S. R. Taylor and J. E. Turner and M. Vallisneri and R. van Haasteren and S. J. Vigeland and C. A. Witt and W. W. Zhu},
journal= {arXiv preprint arXiv:1812.11585},
year = {2019}
}
Comments
10 pages, 11 figures. Accepted by Astrophysical Journal. Please send any comments/questions to S. J. Vigeland ([email protected])