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Big Bang Nucleosynthesis

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arxiv 2301.12299 v1 pith:JOZVMAY2 submitted 2023-01-28 astro-ph.CO hep-ph

Big Bang Nucleosynthesis

classification astro-ph.CO hep-ph
keywords earlyratesfreezephysicsabundancesbackgroundbangdeuterium
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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As the early universe expands and cools the rates of the weak interactions that keep neutrinos in thermal equilibrium with the matter and the related rates of the reactions that inter-convert neutrons and protons decrease. Eventually, these rates fall below the expansion rate -- they freeze out. Likewise, the rates of the strong and electromagnetic nuclear reactions that build up and tear down nuclei, though fast enough to maintain equilibrium early on, slow down and ultimately lead to freeze out. Together these freeze out processes comprise the epoch of Big Bang Nucleosynthesis (BBN). The relics emerging from this early time include the light element abundances, for example of helium and deuterium, and a background of decoupled neutrinos, a "C$\nu$B" , roughly analogous to the Cosmic Microwave Background, the CMB. These fossil relics encode the history of the physics operating in the early universe. Consequently, BBN has emerged as a key tool for constraining new, beyond-standard-model (BSM) physics. BBN may become an even finer probe of BSM physics, given the anticipated higher precision in measurements of the primordial abundances of deuterium and helium afforded by the advent of large optical telescopes and Stage-4 CMB experiments. The latter experiments will also provide higher precision determinations of $N_{\rm eff}$, a measure of the relativistic energy density at the photon decoupling epoch and, hence, an important probe of the C$\nu$B.

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Cited by 3 Pith papers

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  2. Superhorizon curvature perturbations in hybrid inflation revisited

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  3. Early-universe constraints on the electron mass

    hep-ph 2026-02 conditional novelty 5.0

    Big Bang Nucleosynthesis and neutrino-decoupling data pin the early-universe electron mass to 0.504-0.510 MeV, within about 1.4% of the present laboratory value.