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Measurement of the $^{2}$H($p,\gamma$)$^{3}$He S-factor at 265-1094keV

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arxiv 2104.06914 v1 pith:7Y3OFHRD submitted 2021-04-14 nucl-ex astro-ph.CO

classification nucl-exastro-ph.CO
keywords deuteriumbangabundancegammareactions-factorbeambeen
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Recent astronomical data have provided the primordial deuterium abundance with percent precision. As a result, Big Bang nucleosynthesis may provide a constraint on the universal baryon to photon ratio that is as precise as, but independent from, analyses of the cosmic microwave background. However, such a constraint requires that the nuclear reaction rates governing the production and destruction of primordial deuterium are sufficiently well known. Here, a new measurement of the $^2$H($p,\gamma$)$^3$He cross section is reported. This nuclear reaction dominates the error on the predicted Big Bang deuterium abundance. A proton beam of 400-1650keV beam energy was incident on solid titanium deuteride targets, and the emitted $\gamma$-rays were detected in two high-purity germanium detectors at angles of 55$^\circ$ and 90$^\circ$, respectively. The deuterium content of the targets has been obtained in situ by the $^2$H($^3$He,$p$)$^4$He reaction and offline using the Elastic Recoil Detection method. The astrophysical S-factor has been determined at center of mass energies between 265 and 1094 keV, addressing the uppermost part of the relevant energy range for Big Bang nucleosynthesis and complementary to ongoing work at lower energies. The new data support a higher S-factor at Big Bang temperatures than previously assumed, reducing the predicted deuterium abundance.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Deuterium-Proton Fusion in an Effective Field Theory Constructed from On-Shell Amplitudes

    nucl-th 2026-07 conditional novelty 7.0 of 10

    A nuclear-state on-shell EFT yields S(0)=0.209±0.008 eV b for d(p,γ)3He and traces the ab initio-data offset to a natural t_E1≈−0.15 contact term.

  2. A data-driven prediction for the primordial deuterium abundance

    astro-ph.CO 2026-04 unverdicted novelty 6.0 of 10

    Gaussian process regression on nuclear data predicts 10^5 D/H = 2.442 ± 0.040, 1.70 sigma below observation and consistent with first-principles calculations.

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