Tracking the evolving temperature ratio between hidden and visible sectors can change a supercooled hidden-sector phase transition's gravitational wave spectrum by up to four orders of magnitude, reviving it as an explanation of PTA signals.
Asymmetric dark matter with a spontaneously broken $U(1)'$: self-interaction and gravitational waves
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abstract
Motivated by the collisionless cold dark matter small scale structure problem, we propose an asymmetric dark matter model where dark matter particle interact with each other via a massive dark gauge boson. This model easily avoid the strong limits from cosmic microwave background (CMB) observation, and have a large parameter space to be consistent with small scale structure data. We focus on a special scenario where portals between dark sector and visible sector are too weak to be detected by traditional methods. We find that this scenario can increase the effective number of neutrinos ($N_{\text{eff}}$).In addition, the spontaneous $U(1)'$ symmetry breaking process, which makes dark gauge boson massive, can generate stochastic gravitational waves with peak frequency around $10^{-6} - 10^{-7} \text{ Hz}$.
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Supercooled Phase Transitions: Why Thermal History of Hidden Sector Matters in Analysis of Pulsar Timing Array Signals
Tracking the evolving temperature ratio between hidden and visible sectors can change a supercooled hidden-sector phase transition's gravitational wave spectrum by up to four orders of magnitude, reviving it as an explanation of PTA signals.