Using the Standard Solar Model to Constrain Composition and S-Factors
arXiv:1211.6740 · doi:10.1103/PhysRevD.87.043001
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 . 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 dependence. We re-examine an idea for constraining the primordial C+N content of the solar core from a ratio of CN-cycle O to pp-chain B 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 -- O and N -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 Be and B fluxes constrains a product of S-factors to the same precision currently possible with laboratory data.
10 pages, 2 figure, 5 tables. Submitted to PRD
References in corpus (3)
Cited by in corpus (33)
- A new Generation of Standard Solar Models
- Current unknowns in the three neutrino framework
- New axion and hidden photon constraints from a solar data global fit
- Form factors for dark matter capture by the Sun in effective theories
- Physics from solar neutrinos in dark matter direct detection experiments
- A possible indication of momentum-dependent asymmetric dark matter in the Sun
- The Future of Solar Neutrinos
- Alive and well: a short review about standard solar models
- Improved measurement of solar neutrinos from the Carbon-Nitrogen-Oxygen cycle by Borexino and its implications for the Standard Solar Model
- Solar neutrino detection in a large volume double-phase liquid argon experiment
- Constraint on Light Dipole Dark Matter from Helioseismology
- Generalised form factor dark matter in the Sun
- Solar abundance problem
- The EBLM Project VI. The mass and radius of five low-mass stars in F+M binaries discovered by the WASP survey
- Implications of solar wind measurements for solar models and composition
- Cross section of He(,)Be around the Be proton separation threshold
- Constraining Big Bang lithium production with recent solar neutrino data
- Nuclear processes in Astrophysics: Recent progress
- On the impact of the structural surface effect on global stellar properties and asteroseismic analyses
- Solar Neutrino Spectroscopy
- Neutrino Oscillations
- Analysis of the and astrophysical direct capture reactions in a modified potential-model approach
- Astrophysical implications of the proton-proton cross section updates
- Constraining the Be()B -factor with the new precise Be solar neutrino flux from Borexino
- Probing the Sun's inner core using solar neutrinos: a new diagnostic method
- Helioseismic and Neutrino Data Driven Reconstruction of Solar Properties
- Dark matter imprint on B neutrino spectrum
- Standard solar models: a perspective from updated solar neutrino fluxes and the gravity-mode period spacing
- JUNO Physics and Detector
- New neutrino physics and the altered shapes of solar neutrino spectra
- A Semi-Analytical Computation of the Theoretical Uncertainties of the Solar Neutrino Flux
- Generic energy transport solutions to the solar abundance problem -- a hint of new physics
- A look at the Sun: Probing the conditions of the solar core using B neutrinos