English

Non-linear BFKL dynamics: color screening vs. gluon fusion

High Energy Physics - Phenomenology 2015-06-04 v2

Abstract

A feasible mechanism of unitarization of amplitudes of deep inelastic scattering at small values of Bjorken xx is the gluon fusion. However, its efficiency depends crucially on the vacuum color screening effect which accompanies the multiplication and the diffusion of BFKL gluons from small to large distances. From the fits to lattice data on field strength correlators the propagation length of perturbative gluons is Rc0.20.3R_c\simeq 0.2-0.3 fermi. The probability to find a perturbative gluon with short propagation length at large distances is suppressed exponentially. It changes the pattern of (dif)fusion dramatically. The magnitude of the fusion effect appears to be controlled by the new dimensionless parameter Rc2/8B\sim R_c^2/8B, with the diffraction cone slope BB standing for the characteristic size of the interaction region. It should slowly 1/lnQ2\propto 1/\ln Q^2 decrease at large Q2Q^2. Smallness of the ratio Rc2/8BR_c^2/8B makes the non-linear effects rather weak even at lowest Bjorken xx available at HERA. We report the results of our studies of the non-linear BFKL equation which has been generalized to incorporate the running coupling and the screening radius RcR_c as the infrared regulator.

Keywords

Cite

@article{arxiv.1204.1915,
  title  = {Non-linear BFKL dynamics: color screening vs. gluon fusion},
  author = {R. Fiore and P. V. Sasorov and V. R. Zoller},
  journal= {arXiv preprint arXiv:1204.1915},
  year   = {2015}
}

Comments

16 pages, 2 figures, version accepted for publication, references added

R2 v1 2026-06-21T20:46:42.827Z