English

A Precise $\alpha_s$ Determination from the R-improved QCD Static Energy

High Energy Physics - Phenomenology 2026-02-04 v1 High Energy Physics - Lattice

Abstract

The strong coupling αs\alpha_s is extracted with high precision through fits to lattice-QCD data for the static energy. Our theoretical framework is based on R-improving the three-loop fixed-order prediction for the static energy: we remove the u=1/2u=1/2 renormalon and resum the associated large infrared logarithms. Combined with radius-dependent renormalization scales (the so-called profile functions), this procedure extends the range of validity of perturbation theory to distances as large as 0.5\sim 0.5\,fm. In addition, we resum large ultrasoft logarithms to N3^3LL accuracy using renormalization-group evolution. Since the standard four-loop R-evolution treats N4^4LL and higher-order contributions asymmetrically, we also incorporate this potential source of bias in our analysis. Our estimate of the perturbative uncertainty is obtained through a random scan over the parameters controlling the profile functions and the implementation of R-evolution. We analyze how the extracted value of αs\alpha_s depends on the shortest and longest distances included in the fit, on the details of the R-evolution procedure, on the fitting strategy itself, and on the accuracy of ultrasoft resummation. From our final analysis, and after evolution to the ZZ pole, we obtain αs(nf=5)(mZ)=0.1170±0.0009\alpha^{(n_f=5)}_s(m_Z)=0.1170\pm 0.0009, a result fully compatible with the world average and with a comparable uncertainty.

Keywords

Cite

@article{arxiv.2512.09888,
  title  = {A Precise $\alpha_s$ Determination from the R-improved QCD Static Energy},
  author = {Jose M. Mena-Valle},
  journal= {arXiv preprint arXiv:2512.09888},
  year   = {2026}
}

Comments

7 pages, 2 figures, 1 table. Talk presented by Jose M. Mena-Valle at the European Physical Society Conference on High Energy Physics (EPS-HEP) 2025, 7-11 July 2025, Marseille, France

R2 v1 2026-07-01T08:19:14.018Z