Speaker
Description
We present new Big Bang Nucleosynthesis (BBN) limits on the cosmic expansion rate or relativistic energy density, quantified via the number $N_\nu$ of equivalent neutrino species. We use the latest light element observations, neutron mean lifetime, and update our evaluation for the nuclear rates d + d → $^3$He + n and d + d → $^3$H + p. Combining this result with the independent constraints from the cosmic microwave background (CMB) yields tight limits on new physics that perturbs $N_\nu$ and the baryon-to-photon ratio $\eta$ prior to cosmic nucleosynthesis: a joint BBN+CMB analysis gives $N_\nu$ = 2.898 ± 0.141, resulting in $N_\nu$ < 3.180 at 2$\sigma$. The strength of the independent BBN and CMB constraints now opens a new window: we can search for limits on potential changes in $N_\nu$ and/or $\eta$ between the two epochs. The present data place strong constraints on the allowed changes in $N_\nu$ between BBN and CMB decoupling; for example, we find -0.708 $
Keyword-1 | Big Bang Nucleosynthesis |
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Keyword-2 | Cosmology |
Keyword-3 | Astroparticle Physics |