English

The static force in background perturbation theory

High Energy Physics - Phenomenology 2009-11-10 v1

Abstract

The static force FB(r)F_B(r) and the strong coupling αF(r)\alpha_F(r), which defines the gluon-exchange part of FB(r)F_B(r), are studied in QCD background perturbation theory (BPT). In the region r\la0.6r\la 0.6 fm αF(r)\alpha_F(r) turns out to be essentially smaller than the coupling αB(r)\alpha_B(r) in the static potential. For the dimensionless function ΦB(r)=r2FB(r)\Phi_B(r) = r^2 F_B(r) the characteristic values ΦB(r1)=1.0\Phi_B(r_1) =1.0 and ΦB(r0)=1.65\Phi_B(r_0)=1.65 are shown to be reached at the following QQˉQ\bar Q separations: r1σ=0.77,r0σ=1.09r_1\sqrt{\sigma} =0.77, r_0\sqrt{\sigma} =1.09 in quenched approximation and r1σ=0.72,r0σ=1.04r_1\sqrt{\sigma}=0.72, r_0\sqrt{\sigma}=1.04 for nf=3n_f =3. The numbers obtained appear to be by only 8% smaller than those calculated in lattice QCD while the values of the couplings αF(r1)\alpha_F(r_1) and αF(r0)\alpha_F(r_0) in BPT are by 30\sim 30% (n_f =3) and 5050% (n_f=0) larger than corresponding lattice couplings. With the use of the BPT potential good description of the bottomonium spectrum is obtained.

Keywords

Cite

@article{arxiv.hep-ph/0407082,
  title  = {The static force in background perturbation theory},
  author = {A. M. Badalian and A. I. Veselov},
  journal= {arXiv preprint arXiv:hep-ph/0407082},
  year   = {2009}
}

Comments

21 pages, 1 figure. To be publised in Phys. Atom. Nucl. dedicated to the 70-th birthday of Yu.A. Simonov