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Cornell Model Calibration with NRQCD at N$^3$LO

High Energy Physics - Phenomenology 2018-11-30 v1

Abstract

The typical binding energy of heavy hadron spectroscopy makes the system accessible to perturbative calculations in terms of non-relativistic QCD. Within NRQCD the predictions of heavy quarkonium energy levels rely on the accurate description of the static QCD potential VQCD(r)V_{\rm QCD}(r). Historically, heavy quarkonium spectroscopy was studied using phenomenological approaches such as the Cornell model VCornell=κ/r+σrV_{\rm Cornell}=-\kappa/r+\sigma\, r, which assumes a short-distance dominant Coulomb potential plus a liner rising potential that emerges at long distances. Such model works reasonably well in describing the charmonium and bottomonium spectroscopy. However, even when there are physically-motivated arguments for the construction of the Cornell model, there is no conection a priori with QCD parameters. Based on a previous work on heavy meson spectroscopy, we calibrate the Cornell model with NRQCD predictions for the lowest lying bottomonium states at N3^3LO, in which the bottom mass is varied within a wide range. We show that the Cornell model mass parameter can be identified with the low-scale short-distance MSR mass at the scale R=1R = 1 GeV. This identification holds for any value of αs\alpha_s or the bottom mass. For moderate values of rr, the NRQCD and Cornell static potentials are in head-on agreement when switching the pole mass to the MSR scheme, which allows to simultaneously cancel the renormalon and sum up large logarithms.

Keywords

Cite

@article{arxiv.1811.12191,
  title  = {Cornell Model Calibration with NRQCD at N$^3$LO},
  author = {Pablo G. Ortega and Vicent Mateu and David R. Entem and Francisco Fernandez},
  journal= {arXiv preprint arXiv:1811.12191},
  year   = {2018}
}

Comments

12 pages, 5 figures. XIII Quark Confinement and the Hadron Spectrum. arXiv admin note: text overlap with arXiv:1811.01982

R2 v1 2026-06-23T06:25:15.497Z