Revision of the 15N(p,γ)16O reaction rate and oxygen abundance in H-burning zones
arXiv:1107.4514 · doi:10.1051/0004-6361/201117475
Abstract
The NO cycle takes place in the deepest layer of a H-burning core or shell, when the temperature exceeds T {\simeq} 30 {\cdot} 106 K. The O depletion observed in some globular cluster giant stars, always associated with a Na enhancement, may be due to either a deep mixing during the RGB (red giant branch) phase of the star or to the pollution of the primordial gas by an early population of massive AGB (asymptotic giant branch) stars, whose chemical composition was modified by the hot bottom burning. In both cases, the NO cycle is responsible for the O depletion. The activation of this cycle depends on the rate of the 15N(p,γ)16O reaction. A precise evaluation of this reaction rate at temperatures as low as experienced in H-burning zones in stellar interiors is mandatory to understand the observed O abundances. We present a new measurement of the 15N(p,γ)16O reaction performed at LUNA covering for the first time the center of mass energy range 70-370 keV, which corresponds to stellar temperatures between 65 {\cdot} 106 K and 780 {\cdot}106 K. This range includes the 15N(p,γ)16O Gamow-peak energy of explosive H-burning taking place in the external layer of a nova and the one of the hot bottom burning (HBB) nucleosynthesis occurring in massive AGB stars. With the present data, we are also able to confirm the result of the previous R-matrix extrapolation. In particular, in the temperature range of astrophysical interest, the new rate is about a factor of 2 smaller than reported in the widely adopted compilation of reaction rates (NACRE or CF88) and the uncertainty is now reduced down to the 10% level.
6 pages, 5 figures
References in corpus (11)
- Na-O Anticorrelation and HB. VII. The chemical composition of first and second-generation stars in 15 globular clusters from GIRAFFE spectra
- Deep Mixing in Evolved Stars: I. The Effect of Reaction Rate Revisions from C to Al
- LUNA: a Laboratory for Underground Nuclear Astrophysics
- LUNA: Nuclear Astrophysics Deep Underground
- Ultra-sensitive in-beam gamma-ray spectroscopy for nuclear astrophysics at LUNA
- Feasibility of low energy radiative capture experiments at the LUNA underground accelerator facility
- New experimental study of low-energy (p,gamma) resonances in magnesium isotopes
- Direct measurement of the 15N(p,gamma)16O total cross section at novae energies
- Constraining the S factor of 15N(p,g)16O at Astrophysical Energies
- Resonance strengths in the 14N(p, γ)15O and 15N(p, αγ)12C reactions
- Astrophysical factor for the reaction from -matrix analysis and asymptotic normalization coefficient for . Is any fit acceptable?
Cited by in corpus (19)
- NACRE II: an update of the NACRE compilation of charged-particle-induced thermonuclear reaction rates for nuclei with mass number
- The 12C(a,g)16O reaction and its implications for stellar helium burning
- Frontiers in Nuclear Astrophysics
- LUNA: Status and Prospects
- On the metallicity dependence of crystalline silicates in oxygen-rich asymptotic giant branch stars and red supergiants
- A high-efficiency gas target setup for underground experiments, and redetermination of the branching ratio of the 189.5 keV resonance
- Underground nuclear astrophysics: why and how
- First direct limit on the 334 keV resonance strength in the Ne(α,γ)Mg reaction
- A new approach to monitor 13C-targets degradation in situ for 13C(alpha,n)16O cross-section measurements at LUNA
- Exploring Stars in Underground Laboratories: Challenges and Solutions
- Background in -ray detectors and carbon beam tests in the Felsenkeller shallow-underground accelerator laboratory
- Solar fusion III: New data and theory for hydrogen-burning stars
- Indirect methods in nuclear astrophysics with relativistic radioactive beams
- Shell and explosive hydrogen burning
- Effect of beam energy straggling on resonant yield in thin gas targets: The cases Ne(p,γ)Na and N(p,γ)O
- A new study of the B(p,)Be reaction from 0.35 to 1.8 MeV
- Radiative proton capture on within effective field theory
- Investigating 16O with the 15N(p,α)12C reaction
- Radiative p15N Capture At Astrophysical Energy