English

Using the Standard Solar Model to Constrain Composition and S-Factors

Solar and Stellar Astrophysics 2015-06-12 v1 High Energy Physics - Phenomenology Nuclear Experiment Nuclear Theory

Abstract

While standard solar model (SSM) predictions depend on approximately 20 input parameters, SSM neutrino flux predictions are strongly correlated with a single model output parameter, the core temperature TcT_c. Consequently, one can extract physics from solar neutrino flux measurements while minimizing the consequences of SSM uncertainties, by studying flux ratios with appropriate power-law weightings tuned to cancel this TcT_c dependence. We re-examine an idea for constraining the primordial C+N content of the solar core from a ratio of CN-cycle 15^{15}O to pp-chain 8^8B neutrino fluxes, showing that nonnuclear SSM uncertainties in the ratio are small and effectively governed by a single parameter, the diffusion coefficient. We point out that measurements of both CN-I cycle neutrino branches -- 15^{15}O and 13^{13}N β\beta-decay -- could in principle lead to separate determinations of the core C and N abundances, due to out-of-equilibrium CN-cycle burning in the cooler outer layers of the solar core. Finally, we show that the strategy of constructing "minimum uncertainty" neutrino flux ratios can also test other properties of the SSM. In particular, we demonstrate that a weighted ratio of 7^7Be and 8^8B fluxes constrains a product of S-factors to the same precision currently possible with laboratory data.

Keywords

Cite

@article{arxiv.1211.6740,
  title  = {Using the Standard Solar Model to Constrain Composition and S-Factors},
  author = {Aldo Serenelli and Carlos Pena-Garay and W. C. Haxton},
  journal= {arXiv preprint arXiv:1211.6740},
  year   = {2015}
}

Comments

10 pages, 2 figure, 5 tables. Submitted to PRD

R2 v1 2026-06-21T22:45:45.522Z