$\text{QED}_\text{r}$: a finite-volume QED action with redistributed spatial zero-momentum modes
Abstract
We present a finite-volume QED action designed to improve the infinite-volume extrapolation of hadronic observables in precision lattice QCD+QED calculations. The action proposed in this work, which we call , can be seen as a particular case of the infrared-improved QED actions introduced by Davoudi et al. in 2019, and is specifically designed to remove kinematics-independent finite-volume corrections that appear at in the commonly used formulation, where is the spatial extent of the physical volume. For a number of key observables, these effects depend on the internal structure of the hadrons and are difficult to evaluate non-perturbatively, making an analytical subtraction of the finite-volume effects impractical. We explicitly study the electromagnetic finite-size effects on hadron masses and leptonic decay rates, relevant for Standard Model precision tests using the Cabibbo-Kobayashi-Maskawa matrix elements. In addition, we propose methods to remove the kinematics-dependent effects in leptonic decays. The removal of such contributions, shifting the leading contamination to , will help to reduce the systematic uncertainties associated with finite-volume effects in future lattice QCD+QED calculations.
Cite
@article{arxiv.2501.07936,
title = {$\text{QED}_\text{r}$: a finite-volume QED action with redistributed spatial zero-momentum modes},
author = {Matteo Di Carlo and Maxwell T. Hansen and Nils Hermansson-Truedsson and Antonin Portelli},
journal= {arXiv preprint arXiv:2501.07936},
year = {2025}
}