English

A Bayesian analysis of light-front models and the nucleon's charmed sigma term

High Energy Physics - Phenomenology 2017-11-01 v1 Nuclear Theory

Abstract

We present the results of a recent analysis to study the nucleon's charm sigma term, σcc\sigma_{c\overline{c}}. We construct a minimal model in terms of light-front variables and constrain the range of possibilities using extant knowledge from deeply inelastic scattering (DIS) and Bayesian parameter estimation, ultimately computing σcc\sigma_{c\overline{c}} in an explicitly covariant manner. We find a close correlation between a possible nonperturbative component of the charm structure function, F2,ICccF^{c\overline{c}}_{2,\, \mathrm{IC}}, and σcc\sigma_{c\overline{c}}. Independent of prescription for the covariant relativistic quark-nucleon vertex, we determine σcc\sigma_{c\overline{c}} under several different scenarios for the magnitude of intrinsic charm (IC) in DIS, namely xc+c=0.1%\langle x \rangle_{c+\overline{c}} = 0.1\%, 0.35%0.35\%, and 1%1\%, obtaining for these σcc=4±4\sigma_{c\overline{c}} = 4 \pm 4, 12±1312 \pm 13, and 32±3432 \pm 34 MeV, respectively. These results imply the existence of a reciprocity between the IC parton distribution function (PDF) and σcc\sigma_{c\overline{c}} such that new information from either DIS or improved determinations of σcc\sigma_{c \overline{c}} could significantly impact constraints to the charm sector of the proton wave function.

Keywords

Cite

@article{arxiv.1707.06711,
  title  = {A Bayesian analysis of light-front models and the nucleon's charmed sigma term},
  author = {T. J. Hobbs and Mary Alberg and Gerald A. Miller},
  journal= {arXiv preprint arXiv:1707.06711},
  year   = {2017}
}

Comments

14 pages, 6 figures