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arXiv · 1804.10180

Probing Decoupling in Dark Sectors with the Cosmic Microwave Background

Abstract

The acoustic peaks in the angular power spectrum of cosmic microwave background (CMB) temperature and polarization anisotropies play an important role as a probe of the nature of new relativistic particles contributing to the radiation density in the early universe, parametrized by $ΔN_{eff}$. The amplitude and phase of the acoustic oscillations provide information about whether the extra species are free-streaming particles, like neutrinos, or tightly-coupled, like the photons, during eras probed by the CMB. On the other hand, some extensions of the Standard Model produce new relativistic particles that decouple from their own non-gravitational interactions after neutrinos, but prior to photons. We study the signature of new relativistic species that decouple during this intermediate epoch. We argue that the decoupling species will cause a scale-dependent change in the amplitude and phase shift of the acoustic oscillations, different from the usual constant shifts on small scales. For intermediate decoupling times, the phase and amplitude shifts depend not only on $ΔN_{eff}$ but the redshift $z_{dec,X}$ at which the new species decoupled. For $ΔN_{eff} >0.334$, a Stage IV CMB experiment could determine $N_{eff}$ at the percent level and $z_{dec,X}$ at the $\sim 10\%$ level. For smaller values, $ΔN_{eff}\sim 0.1$, constraints on $z_{dec,X}$ weaken but remain $\sim 20-50\%$ for $z_{dec,X} \sim \mathcal{O}(10^3-10^4)$. As an application, we study the contributions to $ΔN_{eff}$ and determine the $z_{dec,X}$ values for simple implementations of the so-called $N$naturalness model.

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Gongjun Choi, Chi-Ting Chiang, Marilena LoVerde. 2018-07-01. Probing Decoupling in Dark Sectors with the Cosmic Microwave Background. https://doi.org/10.1088/1475-7516%2F2018%2F06%2F044

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