The pion scalar form factor with $N_f=2+1$ Wilson fermions

Fuente: arXiv
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Main Authors: Ottnad, Konstantin, von Hippel, Georg
Format: Preprint
Published: 2024
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author Ottnad, Konstantin
von Hippel, Georg
author_facet Ottnad, Konstantin
von Hippel, Georg
contents We report preliminary results from an analysis of the pion scalar form factor computed on a set of the $\mathrm{tr}[M]=\mathrm{const}$ CLS gauge ensembles with $N_f=2+1$ Wilson Clover-improved sea quarks. The calculations are carried out for light quarks masses corresponding to $M_π\approx 0.130\mathrm{MeV} \ldots 350\mathrm{MeV}$, four values of the lattice spacing $a\approx0.049\mathrm{fm}\ldots0.086\mathrm{fm}$ and a large range of physical volumes. A fine-grained momentum resolution is achieved by allowing for non-vanishing sink momenta and by including two particularly large and fine boxes close to physical quark masses (i.e. $T\times L^3 = 192\times 96^3$, $M_π\le 172\mathrm{MeV}$, $a \le 0.064\mathrm{fm}$). The pertinent quark-disconnected contributions have been computed to high precision using a scheme combining 1.) the one-end trick on stochastic volume sources for the computation of differences between two quark flavors with 2.) the hopping parameter expansion and hierarchical probing to evaluate the loops for the heaviest, single quark flavor.
format Preprint
id arxiv_https___arxiv_org_abs_2401_06914
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The pion scalar form factor with $N_f=2+1$ Wilson fermions
Ottnad, Konstantin
von Hippel, Georg
High Energy Physics - Lattice
We report preliminary results from an analysis of the pion scalar form factor computed on a set of the $\mathrm{tr}[M]=\mathrm{const}$ CLS gauge ensembles with $N_f=2+1$ Wilson Clover-improved sea quarks. The calculations are carried out for light quarks masses corresponding to $M_π\approx 0.130\mathrm{MeV} \ldots 350\mathrm{MeV}$, four values of the lattice spacing $a\approx0.049\mathrm{fm}\ldots0.086\mathrm{fm}$ and a large range of physical volumes. A fine-grained momentum resolution is achieved by allowing for non-vanishing sink momenta and by including two particularly large and fine boxes close to physical quark masses (i.e. $T\times L^3 = 192\times 96^3$, $M_π\le 172\mathrm{MeV}$, $a \le 0.064\mathrm{fm}$). The pertinent quark-disconnected contributions have been computed to high precision using a scheme combining 1.) the one-end trick on stochastic volume sources for the computation of differences between two quark flavors with 2.) the hopping parameter expansion and hierarchical probing to evaluate the loops for the heaviest, single quark flavor.
title The pion scalar form factor with $N_f=2+1$ Wilson fermions
topic High Energy Physics - Lattice
url https://arxiv.org/abs/2401.06914