Theoretical aspects of quantum electrodynamics in a finite volume with periodic boundary conditions
Zohreh Davoudi, James Harrison, Andreas J\"uttner, Antonin Portelli,, Martin J. Savage

TL;DR
This paper derives and verifies analytical formulas for finite-volume effects on charged hadron self-energies in lattice QED, improving understanding of finite-volume corrections and proposing methods to mitigate them.
Contribution
It extends finite-volume correction studies to charged hadron self-energies in QED, introduces an improvement scheme, and discusses effective field theory subtleties in this context.
Findings
Analytical formulas for finite-volume corrections to hadron self-energies are derived.
An improvement scheme to eliminate leading finite-volume effects is proposed.
Numerical verification confirms the analytical results.
Abstract
First-principles studies of strongly-interacting hadronic systems using lattice quantum chromodynamics (QCD) have been complemented in recent years with the inclusion of quantum electrodynamics (QED). The aim is to confront experimental results with more precise theoretical determinations, e.g. for the anomalous magnetic moment of the muon and the CP-violating parameters in the decay of mesons. Quantifying the effects arising from enclosing QED in a finite volume remains a primary target of investigations. To this end, finite-volume corrections to hadron masses in the presence of QED have been carefully studied in recent years. This paper extends such studies to the self-energy of moving charged hadrons, both on and away from their mass shell. In particular, we present analytical results for leading finite-volume corrections to the self-energy of spin-0 and spin- particles…
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