Nucleon Polarisabilities at and Beyond Physical Pion Masses
Harald W. Griesshammer (George Washington U.), Judith A. McGovern (U., of Manchester), Daniel R. Phillips (Ohio U.)

TL;DR
This paper uses Chiral Effective Field Theory to predict nucleon polarisabilities across a range of pion masses, comparing with lattice QCD and experimental data, and analyzing the reliability of chiral expansions.
Contribution
It provides comprehensive chiral extrapolations of nucleon polarisabilities including uncertainties, and assesses the validity of EFT predictions at various pion masses.
Findings
Predictions agree with experimental and dispersion-relation data at physical pion mass.
Chiral expansion becomes unreliable for pion masses above ~300 MeV.
Lattice QCD results align well with EFT predictions within convergence range.
Abstract
We examine the results of Chiral Effective Field Theory (EFT) for the scalar- and spin-dipole polarisabilities of the proton and neutron, both for the physical pion mass and as a function of . This provides chiral extrapolations for lattice-QCD polarisability computations. We include both the leading and sub-leading effects of the nucleon's pion cloud, as well as the leading ones of the resonance and its pion cloud. The analytic results are complete at NLO in the -counting for pion masses close to the physical value, and at leading order for pion masses similar to the Delta-nucleon mass splitting. In order to quantify the truncation error of our predictions and fits as \% degree-of-belief intervals, we use a Bayesian procedure recently adapted to EFT expansions. At the physical point, our predictions for the spin polarisabilities are, within…
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