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The pion-nucleon sigma term from lattice QCD
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abstract
We present an analysis of the pion-nucleon $\sigma$-term, $\sigma_{\pi N}$, using six ensembles with 2+1+1-flavor highly improved staggered quark action generated by the MILC collaboration. The most serious systematic effect in lattice calculations of nucleon correlation functions is the contribution of excited states. We estimate these using chiral perturbation theory ($\chi$PT), and show that the leading contribution to the isoscalar scalar charge comes from N$\pi$ and N$\pi\pi$ states. Therefore, we carry out two analyses of lattice data to remove excited-state contamination, the standard one and a new one including N$\pi$ and N$\pi\pi$ states. We find that the standard analysis gives $\sigma_{\pi N} = 41.9(4.9)$ MeV, consistent with previous lattice calculations, while our preferred $\chi$PT-motivated analysis gives $\sigma_{\pi N} = 59.6(7.4)$ MeV, which is consistent with phenomenological values obtained using $\pi$N scattering data. Our data on one physical pion mass ensemble was crucial for exposing this difference, therefore, calculations on additional physical mass ensembles are needed to confirm our result and resolve the tension between lattice QCD and phenomenology.
Forward citations
Cited by 3 Pith papers
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Nucleon sigma terms with a variational analysis from Lattice QCD
A variational basis with nucleon-sigma interpolators reduces excited state contamination in direct lattice QCD determinations of nucleon sigma terms, demonstrated on one Nf=3 ensemble at M_pi=429 MeV.
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Nucleon charges and $\sigma$-terms in lattice QCD
First-principles lattice QCD at the physical pion mass yields nucleon charges and sigma-terms in the continuum limit, with g_A^{u-d}=1.250(24) matching experiment.
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Investigation of $\pi N$ contributions to nucleon matrix elements
A GEVP weighting that skips the costly pion-nucleon diagonal three-point function significantly reduces N pi excited-state contamination for isovector pseudoscalar and axial nucleon matrix elements at m_pi=131 MeV.
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