English

Information content of the weak-charge form factor

Nuclear Theory 2015-06-16 v1

Abstract

Parity-violating electron scattering provides a model-independent determination of the nuclear weak-charge form factor that has widespread implications across such diverse areas as fundamental symmetries, nuclear structure, heavy-ion collisions, and neutron-star structure. We assess the impact of precise measurements of the weak-charge form factor of 48{}^{48}Ca and 208{}^{208}Pb on a variety of nuclear observables, such as the neutron skin and the electric-dipole polarizability. We use the nuclear Density Functional Theory with several accurately calibrated non-relativistic and relativistic energy density functionals. To assess the degree of correlation between nuclear observables and to explore systematic and statistical uncertainties on theoretical predictions, we employ the chi-square statistical covariance technique. We find a strong correlation between the weak-charge form factor and the neutron radius, that allows for an accurate determination of the neutron skin of neutron-rich nuclei. We determine the optimal range of the momentum transfer qq that maximizes the information content of the measured weak-charge form factor and quantify the uncertainties associated with the strange quark contribution. Moreover, we confirm the role of the electric-dipole polarizability as a strong isovector indicator. Accurate measurements of the weak-charge form factor of 48{}^{48}Ca and 208{}^{208}Pb will have a profound impact on many aspects of nuclear theory and hadronic measurements of neutron skins of exotic nuclei at radioactive-beam facilities.

Keywords

Cite

@article{arxiv.1308.1659,
  title  = {Information content of the weak-charge form factor},
  author = {P. -G. Reinhard and J. Piekarewicz and W. Nazarewicz and B. K. Agrawal and N. Paar and X. Rocca-Maza},
  journal= {arXiv preprint arXiv:1308.1659},
  year   = {2015}
}

Comments

10 pages, 4 figures

R2 v1 2026-06-22T01:05:40.102Z