Constraining Gravitational Waves from Superconducting Cosmic Strings with the Dark Ages -cm Signal
arXiv:2608.22319
Abstract
Superconducting cosmic strings (SCSs) are characterized by three parameters: the dimensionless string tension , the current amplitude , and the vector coupling, as recently explored in \cite{Rybak:2024our}. Using the Charge-Velocity-dependent One-Scale (CVOS) model, we compute the stochastic gravitational wave background (SGWB) emitted by current-carrying loops, including the suppression effect of vector radiation. While previous studies have shown that large suppresses the SGWB, allowing larger to evade pulsar timing array (PTA) bounds \cite{Rybak:2024our}, we demonstrate that this parameter space is definitively constrained by an independent, astrophysically clean probe: the Dark Ages global -cm signal. We recalculated the recently derived -cm bounds \cite{Si:2025vsj} into the generic parameter space and find that at the threshold where vector radiation emission starts dominating, any coupling and and injects sufficient ionizing radiation to completely erase the -cm absorption signal at redshift . Greater current amplitudes impose more stringent constraints. This excludes a large parameter space considered viable. Our model-independent results highlight the complementarity between future lunar-based -cm experiments and gravitational wave (GW) observatories.
9+2 pages, 3 figures