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The NANOGrav 11 Year Data Set: Pulsar-Timing Constraints on the Stochastic Gravitational-Wave Background

Authors :
Arzoumanian, Z
Baker, P. T
Brazier, A
Burke-Spolaor, S
Chamberlin, S. J
Chatterjee, S
Christy, B
Cordes, J. M
Cornish, N. J
Crawford, F
Cromartie, H. Thankful
Crowter, K
DeCesar, M
Demorest, P. B
Dolch, T
Ellis, J. A
Ferdman, R. D
Ferrara, E
Folkner, W. M
Fonseca, E
Garver-Daniels, N
Gentile, P. A
Haas, R
Hazboun, J. S
Huerta, E. A
Islo, K
Jones, G
Jones, M. L
Kaplan, D. L
Kaspi, V. M
Lam, M. T
Lazio, T. J. W
Levin, L
Lommen, A. N
Lorimer, D. R
Luo, J
Lynch, R. S
Madison, D. R
McLaughlin, M. A
McWilliams, S. T
Mingarelli, C. M. F
Ng, C
Nice, D. J
Park, R. S
Pennucci, T. T
Pol, N. S
Ransom, S. M
Ray, P. S
Rasskazov, A
Siemens, X
Simon, J
Spiewak, R
Stairs, I. H
Stinebring, D. R
Stovall, K
Swiggum, J
Taylor, S. R
Vallisneri, M
van Haasteren, R
Vigeland, S
Zhu, W. W
Source :
Astrophysical Journal. 859(1)
Publication Year :
2018
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2018.

Abstract

We search for an isotropic stochastic gravitational-wave background (GWB) in the newly released 11 year data set from the North American Nanohertz Observatory for Gravitational Waves (NANOGrav). While we find no evidence for a GWB, we place constraints on a population of inspiraling supermassive black hole (SMBH) binaries, a network of decaying cosmic strings, and a primordial GWB. For the first time, we find that the GWB constraints are sensitive to the solar system ephemeris (SSE) model used and that SSE errors can mimic a GWB signal. We developed an approach that bridges systematic SSE differences, producing the first pulsar-timing array (PTA) constraints that are robust against SSE errors. We thus place a 95% upper limit on the GW-strain amplitude of A (sub GWB) < 1.45 × 10 (exp -15) at a frequency of f=1 yr(exp -1) for a fiducial f (exp -2/3) power-law spectrum and with interpulsar correlations modeled. This is a factor of approximately 2 improvement over the NANOGrav nine-year limit calculated using the same procedure. Previous PTA upper limits on the GWB (as well as their astrophysical and cosmological interpretations) will need revision in light of SSE systematic errors. We use our constraints to characterize the combined influence on the GWB of the stellar mass density in galactic cores, the eccentricity of SMBH binaries, and SMBH-galactic-bulge scaling relationships. We constrain the cosmic-string tension using recent simulations, yielding an SSE-marginalized 95% upper limit of G (sub mu) < 5.3 × 10(exp -11) - a factor of approximately 2 better than the published NANOGrav nine-year constraints. Our SSE-marginalized 95% upper limit on the energy density of a primordial GWB (for a radiation-dominated post-inflation universe) is omega (sub GWB)(f) h (exp 2) < 3.4 × 10 (exp -10).

Subjects

Subjects :
Astrophysics

Details

Language :
English
ISSN :
15384357 and 0004637X
Volume :
859
Issue :
1
Database :
NASA Technical Reports
Journal :
Astrophysical Journal
Notes :
PF3-140116, , NSF PFC-1430284, , NSF OIA-1458952, , NSF OCI-0725070, , 662409, , CAS XDB23000000, , NSF PHY-0960291, , NSF PHYS-1066293, , NSF ACI-1238993
Publication Type :
Report
Accession number :
edsnas.20180005594
Document Type :
Report
Full Text :
https://doi.org/10.3847/1538-4357/aabd3b