English

The Euclidean Adler Function and its Interplay with $\Delta\alpha^{\mathrm{had}}_{\mathrm{QED}}$ and $\alpha_s$

High Energy Physics - Phenomenology 2023-04-27 v2 High Energy Physics - Experiment High Energy Physics - Lattice

Abstract

Three different approaches to precisely describe the Adler function in the Euclidean regime at around 2GeVs2\, \mathrm{GeVs} are available: dispersion relations based on the hadronic production data in e+ee^+e^- annihilation, lattice simulations and perturbative QCD (pQCD). We make a comprehensive study of the perturbative approach, supplemented with the leading power corrections in the operator product expansion. All known contributions are included, with a careful assessment of uncertainties. The pQCD predictions are compared with the Adler functions extracted from ΔαQEDhad(Q2)\Delta\alpha^{\mathrm{had}}_{\mathrm{QED}}(Q^2), using both the DHMZ compilation of e+ee^+e^- data and published lattice results. Taking as input the FLAG value of αs\alpha_s, the pQCD Adler function turns out to be in good agreement with the lattice data, while the dispersive results lie systematically below them. Finally, we explore the sensitivity to αs\alpha_s of the direct comparison between the data-driven, lattice and QCD Euclidean Adler functions. The precision with which the renormalisation group equation can be tested is also evaluated.

Keywords

Cite

@article{arxiv.2302.01359,
  title  = {The Euclidean Adler Function and its Interplay with $\Delta\alpha^{\mathrm{had}}_{\mathrm{QED}}$ and $\alpha_s$},
  author = {M. Davier and D. Díaz-Calderón and B. Malaescu and A. Pich and A. Rodríguez-Sánchez and Z. Zhang},
  journal= {arXiv preprint arXiv:2302.01359},
  year   = {2023}
}

Comments

56 pages, 22 figures, 14 tables. Published version

R2 v1 2026-06-28T08:30:44.580Z