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DOE OSTI Β· 2589757

Finite-volume formalism for physical processes with an electroweak loop integral

Abstract

This study investigates finite-volume effects in physical processes that involve the combination of long-range hadronic matrix elements with electroweak loop integrals. We adopt the approach of implementing the electroweak part as the infinite-volume version, which is denoted as the EW ∞ method in this work. A general approach is established for correcting finite-volume effects in cases where the hadronic intermediate states are dominated by either a single particle or two particles. For the single-particle case, this work derives the infinite volume reconstruction method from a new perspective. For the two-particle case, we provide the correction formulas for power-law finite-volume effects and unphysical terms with exponentially divergent time dependence. The finite-volume formalism developed in this study has broad applications, including the QED corrections in various processes and the two-photon exchange contribution in 𝐾 𝐿 β†’ πœ‡ + β’πœ‡ βˆ’ or πœ‚ β†’ πœ‡ + β’πœ‡ βˆ’ decays.

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BibTeXRIS

Tuo, Xin-Yu [Peking University, Beijing (China); Brookhaven National Laboratory (BNL), Upton, NY (United States)] (ORCID:0000000310273283), Feng, Xu [Peking University, Beijing (China); Collaborative Innovation Center of Quantum Matter, Beijing (China)] (ORCID:0000000208560649). 2025-08-28. Finite-volume formalism for physical processes with an electroweak loop integral. https://doi.org/10.1103/4mn6-w366

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