Published June 26, 2024 | Version v1
Journal article

Exploring the spectrum of stochastic gravitational-wave anisotropies with pulsar timing arrays

  • 1. William H. Miller III Department of Physics and Astronomy, Johns Hopkins University, 3400 North Charles Street, Baltimore, Maryland 21218, USA

Description

Anisotropies in the nanohertz gravitational-wave background are a compelling next target for pulsar timing arrays (PTAs). Measurements or informative upper limits to the anisotropies are expected in the near future and can offer important clues about the origin of the background and the properties of the sources. Given that each source is expected (in the simplest scenario of circular inspirals) to emit at a fixed frequency, the anisotropy will most generally vary from one frequency to another. The main result presented in this work is an analytical model for the anisotropies produced by a population of inspiralling supermassive black-hole binaries (SMBHBs). This model can be immediately connected with parametrizations of the SMBHB mass function and can be easily expanded to account for new physical processes taking place within the PTA frequency band. We show that a variety of SMBHB models predict significant levels of anisotropy at the highest frequencies accessible to PTA observations and that measurements of anisotropies can offer new information regarding this population beyond the isotropic component. We also model the impact of additional dynamical effects driving the binary towards merger and show that, if these processes are relevant within the PTA band, the detectability of anisotropies relative to the isotropic background will be enhanced. Finally, we use the formalism presented in this work to predict the level anisotropy of the circular and linear polarizations of the stochastic gravitational-wave background due to the distribution of binary orientation angles with respect to the line of sight.

Additional details

Identifiers

DOI
10.1103/PhysRevD.109.123544;
arXiv
arXiv:2305.05690;
Crossref Funder ID
10.13039/100000001; 10.13039/100007880; 10.13039/100000893;

Publishing Information

Journal Title
Physical Review D
Journal Volume
109
Journal Issue
12
Journal Page Range
9 pgs.
ISSN
1089-4918

Optional Information

Copyright
© 2024 American Physical Society
Contract/Grant/Project number
1818899; DGE1746891
Notes
Record automatically processed
Funding organization
National Science Foundation; Johns Hopkins University; Simons Foundation; National Science Foundation Graduate Research Fellowship