English

The strong coupling constant: State of the art and the decade ahead

High Energy Physics - Phenomenology 2024-12-02 v2 High Energy Physics - Experiment High Energy Physics - Lattice

Abstract

Theoretical predictions for particle production cross sections and decays at colliders rely heavily on perturbative Quantum Chromodynamics (QCD) calculations, expressed as an expansion in powers of the strong coupling constant αs\alpha_s. The current O(1%)\mathcal{O}(1\%) uncertainty of the QCD coupling evaluated at the reference Z boson mass, αs(mZ)=0.1179±0.0009\alpha_s(m_Z) = 0.1179 \pm 0.0009, is one of the limiting factors to more precisely describe multiple processes at current and future colliders. A reduction of this uncertainty is thus a prerequisite to perform precision tests of the Standard Model as well as searches for new physics. This report provides a comprehensive summary of the state-of-the-art, challenges, and prospects in the experimental and theoretical study of the strong coupling. The current αs(mZ)\alpha_s(m_Z) world average is derived from a combination of seven categories of observables: (i) lattice QCD, (ii) hadronic τ\tau decays, (iii) deep-inelastic scattering and parton distribution functions fits, (iv) electroweak boson decays, hadronic final-states in (v) e+ee^+e^-, (vi) e-p, and (vii) p-p collisions, and (viii) quarkonia decays and masses. We review the current status of each of these seven αs(mZ)\alpha_s(m_Z) extraction methods, discuss novel αs\alpha_s determinations, and examine the averaging method used to obtain the world-average value. Each of the methods discussed provides a ``wish list'' of experimental and theoretical developments required in order to achieve the goal of a per-mille precision on αs(mZ)\alpha_s(m_Z) within the next decade.

Keywords

Cite

@article{arxiv.2203.08271,
  title  = {The strong coupling constant: State of the art and the decade ahead},
  author = {D. d'Enterria and S. Kluth and G. Zanderighi and C. Ayala and M. A. Benitez-Rathgeb and J. Bluemlein and D. Boito and N. Brambilla and D. Britzger and S. Camarda and A. M. Cooper-Sarkar and T. Cridge and G. Cvetic and M. Dalla Brida and A. Deur and F. Giuli and M. Golterman and A. H. Hoang and J. Huston and M. Jamin and A. V. Kotikov and V. G. Krivokhizhin and A. S. Kronfeld and V. Leino and K. Lipka and T. Makela and B. Malaescu and K. Maltman and S. Marzani and V. Mateu and S. Moch and P. F. Monni and P. Nadolsky and P. Nason and A. V. Nesterenko and R. Perez-Ramos and S. Peris and P. Petreczky and A. Pich and K. Rabbertz and A. Ramos and D. Reichelt and A. Rodriguez-Sanchez and J. Rojo and M. Saragnese and L. Sawyer and M. Schott and S. Schumann and B. G. Shaikhatdenov and S. Sint and G. Soyez and D. Teca and A. Vairo and M. Vos and C. Waits and J. H. Weber and M. Wobisch and K. Xie},
  journal= {arXiv preprint arXiv:2203.08271},
  year   = {2024}
}

Comments

135 pages, 45 figures. White paper for the "Energy Frontier Proceedings of the US Community Study on the Future of Particle Physics" (Snowmass 2021). Matches JPG published version