CN-Cycle Solar Neutrinos and Sun's Primordial Core Metalicity
arXiv:0805.2013 · doi:10.1086/591787
Abstract
We argue that it may be possible to exploit neutrinos from the CN cycle and pp chain to determine the primordial solar core abundances of C and N at an interesting level of precision. Such a measurement would allow a comparison of the Sun's deep interior composition with it surface, testing a key assumption of the standard solar model (SSM), a homogeneous zero-age Sun. It would also provide a cross-check on recent photospheric abundance determinations that have altered the once excellent agreement between the SSM and helioseismology. As further motivation, we discuss a speculative possibility in which photospheric abundance/helioseismology puzzle is connected with the solar-system metal differentiation that accompanied formation of the gaseous giant planets. The theoretical relationship between core C and N and the 13N and 15O solar neutrino fluxes can be made more precise (and more general) by making use of the Super-Kamiokande and SNO 8B neutrino capture rates, which calibrate the temperature of the solar core. The primordial C and N abundances can then be obtained from these neutrino fluxes and from a product of nuclear rates, with little residual solar model dependence. We describe some of the recent experimental advances that could allow this comparison to be made (theoretically) at about the 9% level, and note that this uncertainty may be reduced further due to ongoing work on the S-factor for 14N(p,gamma). The envisioned measurement might be possible in deep, large-volume detectors using organic scintillator, e.g., Borexino or SNO+
33 pages, 4 figures
References in corpus (2)
Cited by in corpus (19)
- A new Generation of Standard Solar Models
- LUNA: Nuclear Astrophysics Deep Underground
- LUNA: Status and Prospects
- Ultra-sensitive in-beam gamma-ray spectroscopy for nuclear astrophysics at LUNA
- The Future of Solar Neutrinos
- Improved measurement of solar neutrinos from the Carbon-Nitrogen-Oxygen cycle by Borexino and its implications for the Standard Solar Model
- The 14N(p,gamma)15O reaction studied with a composite germanium detector
- Astrophysical S-factor of the reaction at 0.4 -- 1.3\,MeV
- Evidence of a signature of planet formation processes from solar neutrino fluxes
- Solar fusion III: New data and theory for hydrogen-burning stars
- An Expanded Set of Los Alamos OPLIB Tables in MESA: Type-1 Rosseland-mean Opacities and Solar Models
- The impact of composition choices on solar evolution: age, helio- and asteroseismology, and neutrinos
- Axion Helioscopes as Solar Thermometers
- Activation cross section measurement of the 14N(p,gamma)15O astrophysical key reaction
- Spatially resolved measurements of the solar photospheric oxygen abundance
- Lifetime measurements of excited states in O
- The luminosity constraint in the era of precision solar physics
- Advancements in solar neutrino physics
- Radiative Capture of proton 14N(p,γ) 15O at Low Energy