An accurate calculation of the nucleon axial charge with lattice QCD
Abstract
We report on a lattice QCD calculation of the nucleon axial charge, gA, using M\"obius Domain-Wall fermions solved on the dynamical Nf=2+1+1 HISQ ensembles after they are smeared using the gradient-flow algorithm. The calculation is performed with three pion masses, mπ\310,220,130\ MeV. Three lattice spacings (a\0.15,0.12,0.09\ fm) are used with the heaviest pion mass, while the coarsest two spacings are used on the middle pion mass and only the coarsest spacing is used with the near physical pion mass. On the mπ220 MeV, a0.12 fm point, a dedicated volume study is performed with mπ L \3.22,4.29,5.36\. Using a new strategy motivated by the Feynman-Hellmann Theorem, we achieve a precise determination of gA with relatively low statistics, and demonstrable control over the excited state, continuum, infinite volume and chiral extrapolation systematic uncertainties, the latter of which remains the dominant uncertainty. Our final determination at 2.6\% total uncertainty is gA = 1.278(21)(26), with the first uncertainty including statistical and systematic uncertainties from fitting and the second including model selection systematics related to the chiral and continuum extrapolation. The largest reduction of the second uncertainty will come from a greater number of pion mass points as well as more precise lattice QCD results near the physical pion mass.
Turn this paper into a lesson
ArcXiv compiles a structured reading guide from this paper's metadata: plain-English importance, contributions, prerequisite concepts, which sections to read first, flashcards, and a quiz. Grounded in the abstract, never invented.