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Dark Radiation Isocurvature from Cosmological Phase Transitions

High Energy Physics - Phenomenology 2024-02-22 v1 Cosmology and Nongalactic Astrophysics

Abstract

Cosmological first order phase transitions are typically associated with physics beyond the Standard Model, and thus of great theoretical and observational interest. Models of phase transitions where the energy is mostly converted to dark radiation can be constrained through limits on the dark radiation energy density (parameterized by ΔNeff\Delta N_{\rm eff}). However, the current constraint (ΔNeff<0.3\Delta N_{\rm eff} < 0.3) assumes the perturbations are adiabatic. We point out that a broad class of non-thermal first order phase transitions that start during inflation but do not complete until after reheating leave a distinct imprint in the scalar field from bubble nucleation. Dark radiation inherits the perturbation from the scalar field when the phase transition completes, leading to large-scale isocurvature that would be observable in the CMB. We perform a detailed calculation of the isocurvature power spectrum and derive constraints on ΔNeff\Delta N_{\rm eff} based on CMB+BAO data. For a reheating temperature of TrhT_{\rm rh} and a nucleation temperature TT_*, the constraint is approximately ΔNeff105(T/Trh)4\Delta N_{\rm eff}\lesssim 10^{-5} (T_*/T_{\rm rh})^{-4}, which can be much stronger than the adiabatic result. We also point out that since perturbations of dark radiation have a non-Gaussian origin, searches for non-Gaussianity in the CMB could place a stringent bound on ΔNeff\Delta N_{\rm eff} as well.

Keywords

Cite

@article{arxiv.2402.13309,
  title  = {Dark Radiation Isocurvature from Cosmological Phase Transitions},
  author = {Matthew R. Buckley and Peizhi Du and Nicolas Fernandez and Mitchell J. Weikert},
  journal= {arXiv preprint arXiv:2402.13309},
  year   = {2024}
}

Comments

22 pages, 10 figures