Precision measures of the primordial abundance of deuterium
Ryan Cooke (1), Max Pettini (2,3), Regina A. Jorgenson (4), Michael T., Murphy (5), Charles C. Steidel (6) ((1) University of California, Santa Cruz,, (2) Institute of Astronomy, University of Cambridge, (3) Kavli Institute for, Cosmology, University of Cambridge

TL;DR
This paper presents a precise measurement of the primordial deuterium abundance using new and reanalyzed data, constrains cosmological parameters, and tests the existence of sterile neutrinos with implications for physics beyond the standard model.
Contribution
It introduces a new measurement of primordial deuterium, reanalyzes existing data with a blind approach, and derives constraints on cosmological parameters and neutrino physics.
Findings
Measured (D/H)_p = (2.53 +/- 0.04) x 10^-5
Derived baryon density Omega_b h^2 = 0.02202 +/- 0.00046
Ruled out additional sterile neutrino species at 99.3% confidence
Abstract
We report the discovery of deuterium absorption in the very metal-poor ([Fe/H] = -2.88) damped Lyman-alpha system at z_abs = 3.06726 toward the QSO SDSS J1358+6522. On the basis of 13 resolved D I absorption lines and the damping wings of the H I Lyman alpha transition, we have obtained a new, precise measure of the primordial abundance of deuterium. Furthermore, to bolster the present statistics of precision D/H measures, we have reanalyzed all of the known deuterium absorption-line systems that satisfy a set of strict criteria. We have adopted a blind analysis strategy (to remove human bias), and developed a software package that is specifically designed for precision D/H abundance measurements. For this reanalyzed sample of systems, we obtain a weighted mean of (D/H)_p = (2.53 +/- 0.04) x 10^-5, corresponding to a Universal baryon density100 Omega_b h^2 = 2.202 +/- 0.046 for the…
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