The Impact of New d(p,\gamma)He3 Rates on Big Bang Nucleosynthesis
Tsung-Han Yeh, Keith A. Olive, Brian D. Fields

TL;DR
This paper assesses how new measurements of the d(p,γ)He3 reaction rate influence Big Bang Nucleosynthesis predictions, showing improved consistency with observations and tighter constraints on neutrino species.
Contribution
It provides a data-driven re-evaluation of the d(p,γ)He3 reaction rate and integrates it into BBN and CMB analyses, refining primordial abundance predictions and neutrino constraints.
Findings
New reaction rates improve agreement between BBN predictions and observed deuterium.
Constraints on the effective number of neutrino species are tightened to N_ν = 2.88 ± 0.14.
Predicted deuterium abundance remains consistent with quasar absorption measurements.
Abstract
We consider the effect on Big Bang Nucleosynthesis (BBN) of new measurements of the He cross section by the LUNA Collaboration. These have an important effect on the primordial abundance of D/H which is also sensitive to the baryon density at the time of BBN. We have re-evaluated the thermal rate for this reaction, using a world average of cross section data, which we describe with model-independent polynomials; our results are in good agreement with a similar analysis by LUNA. We then perform a full likelihood analysis combining BBN and Planck cosmic microwave background (CMB) likelihood chains using the new rate combined with previous measurements and compare with the results using previous rates. Concordance between BBN and CMB measurements of the anisotropy spectrum using the old rates was excellent. The predicted deuterium abundance at the Planck value of the…
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