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arXiv:2408.10166·v2·High Energy Astrophysical Phenomena

The NANOGrav 15 yr Data Set: Running of the Spectral Index

Gabriella Agazie🇺🇸 · Akash Anumarlapudi🇺🇸 · Anne M. Archibald🇬🇧 · Zaven Arzoumanian🇺🇸 · Jeremy George Baier🇺🇸 · Paul T. Baker🇺🇸 · Bence Bécsy🇺🇸 · Laura Blecha🇺🇸 · Adam Brazier🇺🇸 · Paul R. Brook🇬🇧 · Sarah Burke-Spolaor🇺🇸 · J. Andrew Casey-Clyde🇺🇸

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Abstract

The NANOGrav 15-year data provides compelling evidence for a stochastic gravitational-wave (GW) background at nanohertz frequencies. The simplest model-independent approach to characterizing the frequency spectrum of this signal consists in a simple power-law fit involving two parameters: an amplitude A and a spectral index \gamma. In this paper, we consider the next logical step beyond this minimal spectral model, allowing for a running (i.e., logarithmic frequency dependence) of the spectral index, \gamma_run(f) = \gamma + \beta \ln(f/f_ref). We fit this running-power-law (RPL) model to the NANOGrav 15-year data and perform a Bayesian model comparison with the minimal constant-power-law (CPL) model, which results in a 95% credible interval for the parameter \beta consistent with no running, \beta \in [-0.80,2.96], and an inconclusive Bayes factor, B(RPL vs. CPL) = 0.69 +- 0.01. We thus conclude that, at present, the minimal CPL model still suffices to adequately describe the NANOGrav signal; however, future data sets may well lead to a measurement of nonzero \beta. Finally, we interpret the RPL model as a description of primordial GWs generated during cosmic inflation, which allows us to combine our results with upper limits from big-bang nucleosynthesis, the cosmic microwave background, and LIGO-Virgo-KAGRA.

Comments: 18 pages, 4 figures, 2 tables. v2: matches version published in ApJ Letters

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