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Dark matter-baryon scattering effects on temperature perturbations and implications for cosmic dawn

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arxiv 2203.16524 v1 pith:6ASQWEA7 submitted 2022-03-30 astro-ph.CO

classification astro-ph.CO
keywords darkmatterpowertemperaturecontributionscosmicdawnspectrum
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

The nature of dark matter remains unknown, but upcoming measurements probing the high-redshift Universe may provide invaluable insight. In the presence of dark matter-baryon scattering, the suppression in the matter power spectrum and the colder mean gas temperature are expected to modify the evolution of cosmic dawn and reionization. However, the contributions from such interactions to the baryon and dark matter temperature perturbations have been neglected thus far. In this work, we derive these contributions, evolve the cosmological perturbations until the end of the dark ages and show that they may have a significant impact in the beginning of cosmic dawn. In particular, we find that the amplitude of the temperature power spectrum at large scales can change by up to 1--2 orders of magnitude and that the matter power spectrum is further suppressed with respect to $\Lambda$CDM by $5$-$10\%$ at $k\sim 200\, {\rm Mpc^{-1}}$ compared to the computation ignoring these contributions for scattering cross sections at current CMB limits. As a case example, we also compute the HI power spectrum from the dark ages, finding significant differences due to the changes in the temperature and ionization fraction power spectra. We argue that these new contributions must be included in studies of this dark matter model relying on cosmic dawn and reionization observables.

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Cited by 2 Pith papers

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  1. Bispectrum BAO and the baryon-dark matter relative velocity

    astro-ph.CO 2026-07 conditional novelty 5.0 of 10

    A template-based bispectrum-monopole BAO measurement is shown to be unbiased on simulations and, jointly with the power spectrum, to sharpen BAO constraints while exposing baryon-dark matter velocity biases.

  2. Probing Long-Range Forces Between Neutrinos with Cosmic Structures

    hep-ph 2024-12 conditional novelty 5.0 of 10

    Neutrino long-range forces stronger than gravity would make the cosmic neutrino background collapse into bound states, and existing matter power spectrum and reionization data now exclude a band of couplings for force...

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