HVP contribution to Running Coupling and Electroweak Precision Science

Autor: Miura, Kohtaroh, Cè, Marco, Gérardin, Antoine, von Hippel, Georg, Meyer, Harvey B., Ottnad, Konstantin, Risch, Andreas, San Jose, Teseo, Wilhelm, Jonas, Wittig, Hartmut
Přispěvatelé: Miura, K, Cè, M, Gérardin, A, von Hippel, G, Meyer, H, Ottnad, K, Risch, A, San José, T, Wilhelm, J, Wittig, H
Rok vydání: 2022
Předmět:
Zdroj: Proceedings of Science / International School for Advanced Studies (LATTICE2021), 342 (2021). doi:10.22323/1.396.0342
The 38th International Symposium on Lattice Field Theory, Lattice 2021, Zoom/Gather@Massachusetts Institute of Technology, USA, 2021-07-26-2021-07-30
Scopus-Elsevier
DOI: 10.22323/1.396.0342
Popis: The 38th International Symposium on Lattice Field Theory, Lattice 2021, Zoom/Gather@Massachusetts Institute of Technology, USA, 26 Jul 2021 - 30 Jul 2021; Proceedings of Science / International School for Advanced Studies (LATTICE2021), 342 (2021). doi:10.22323/1.396.0342
We investigate the impact of the latest Mainz/CLS collaboration’s result for the hadronic vacuum polarization (HVP) on the electroweak (EW) precision science. The subject is closely related to the muon $g-2$ via the HVP. Both precision tests come under scrutiny with respect to physics Beyond the Standard Model. Our HVP calculation is used for the running electromagnetic coupling at low energy and linked at various matching energies to the higher energy running evaluated by phenomenological approaches. We predict the electromagnetic coupling at the Z-pole ($\Delta\alpha^{(5)}_{\text{had}}(M^{2}_{Z})$), providing a lattice-driven input to EW-global fits. Our preliminary $\Delta\alpha^{(5)}_{\text{had}}(M^{2}_{Z})$ is stable for a wide range of matching energies and comes with various systematics taken into account and consistent with phenomenological estimates.
Published by SISSA, Trieste
Databáze: OpenAIRE