The stochastic gravitational wave background from cosmic superstrings
Abstract
We study the stochastic gravitational wave background sourced by a network of cosmic superstrings and demonstrate that incorporating higher-mass string species, beyond the fundamental string, is crucial for accurately modelling the resulting gravitational wave spectrum across frequencies ranging from nanohertz to kilohertz. Using the multi-tension velocity-dependent one-scale model to evolve the cosmic superstring network, we perform several fits to the NANOGrav 15-year dataset and obtain expectation values for the fundamental string tension, string coupling and effective size of compact extra dimensions. We find that the cosmic superstring best-fits are comparable in likelihood to Supermassive Black Hole models, thought by many to be the leading candidate explanation of the signal. The implications of the best-fit spectra are discussed within the context of future gravitational wave experiments. We obtain expectation values for the fundamental string tension of () for gravitational waves originating from large cuspy (kinky) cosmic superstring loops and () for small cuspy (kinky) loops. We also place upper bounds on the string coupling, finding in all cases, and comment on the implication of our results for the effective size of the compact extra dimensions.
Cite
@article{arxiv.2503.10361,
title = {The stochastic gravitational wave background from cosmic superstrings},
author = {Anastasios Avgoustidis and Edmund J. Copeland and Adam Moss and Juhan Raidal},
journal= {arXiv preprint arXiv:2503.10361},
year = {2025}
}
Comments
19 pages, 9 figures