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arXiv · 2110.11372

The $γπ\toππ$ anomaly from lattice QCD and dispersion relations

Abstract

We propose a formalism to extract the $γπ\toππ$ chiral anomaly $F_{3π}$ from calculations in lattice QCD performed at larger-than-physical pion masses. To this end, we start from a dispersive representation of the $γ^{(*)}π\toππ$ amplitude, whose main quark-mass dependence arises from the $ππ$ scattering phase shift and can be derived from chiral perturbation theory via the inverse-amplitude method. With parameters constrained by lattice calculations of the $P$-wave phase shift, we use this combination of dispersion relations and effective field theory to extrapolate two recent $γ^{(*)}π\toππ$ calculations in lattice QCD to the physical point. Our formalism allows us to extract the radiative coupling of the $ρ(770)$ meson and, for the first time, the chiral anomaly $F_{3π}=38(16)(11)\,\text{GeV}^{-3}$. The result is consistent with the chiral prediction albeit within large uncertainties, which will improve in accordance with progress in future lattice-QCD computations.

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Malwin Niehus, Martin Hoferichter, Bastian Kubis. 2021-12-15. The $γπ\toππ$ anomaly from lattice QCD and dispersion relations. https://doi.org/10.1007/jhep12(2021)038

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