Disentangling the primordial nature of stochastic gravitational wave backgrounds with CMB spectral distortions

Author:

Cyr Bryce1ORCID,Kite Thomas12ORCID,Chluba Jens1ORCID,Hill J Colin3,Jeong Donghui45,Acharya Sandeep Kumar1,Bolliet Boris67ORCID,Patil Subodh P8

Affiliation:

1. Jodrell Bank Centre for Astrophysics, School of Physics and Astronomy, The University of Manchester , Manchester M13 9PL , UK

2. Cardiology Division, Massachusetts General Hospital, Harvard Medical School , Boston, MA, 02115 , USA

3. Department of Physics, Columbia University , New York, NY 10027 , USA

4. Institute for Gravitation and the Cosmos, and the Department of Astronomy and Astrophysics, The Pennsylvania State University , University Park, PA 16802 , USA

5. School of Physics, Korea Institute for Advanced Study (KIAS) , 85 Hoegiro, Dongdaemun-gu, Seoul 02455 , Republic of Korea

6. Kavli Institute for Cosmology, University of Cambridge , Madingley Road, Cambridge CB3 0HA , UK

7. DAMTP, Centre for Mathematical Sciences , Wilberforce Road, Cambridge CB3 0WA , UK

8. Instituut-Lorentz for Theoretical Physics, Leiden University , NL-2333 CA Leiden , the Netherlands

Abstract

ABSTRACT The recent detection of a stochastic gravitational wave background (SGWB) at nanohertz frequencies by pulsar timing arrays (PTAs) has sparked a flurry of interest. Beyond the standard interpretation that the progenitor is a network of supermassive black hole binaries, many exotic models have also been proposed, some of which can potentially offer a better fit to the data. We explore how the various connections between gravitational waves (GWs) and cosmic microwave background (CMB) spectral distortions (SDs) can be leveraged to help determine whether an SGWB was generated primordially or astrophysically. To this end, we present updated k-space window functions that can be used for distortion parameter estimation on enhancements to the primordial scalar power spectrum. These same enhancements can also source GWs directly at second order in perturbation theory, so-called scalar-induced GWs (SIGWs), and indirectly through the formation of primordial black holes (PBHs). We perform a mapping of scalar power spectrum constraints into limits on the GW parameter space of SIGWs for δ-function features. We highlight that broader features in the scalar spectrum can explain the PTA results while simultaneously producing an SD within reach of future experiments. We additionally update PBH constraints from μ- and y-type SDs. Refined treatments of the distortion window functions widen existing SD constraints, and we find that a future CMB spectrometer could play a pivotal role in unravelling the origin of GWs imprinted at or below CMB anisotropy scales.

Funder

European Research Council

Natural Sciences and Engineering Research Council of Canada

Royal Society

NSF

NASA

Simons Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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