arXiv · 2504.12837
Dipole-pion cross section in the saturation regime
Abstract
The scale-dependent dipole-pion cross section is analyzed as a function of the dipole size $r$ and the impact parameter $b$. This analysis relies on the Dokshitzer-Gribov-Lipatov-Altarelli-Parisi (DGLAP) evolution equation in ${\mu}{\sim} 1/r +{\mu}_{0}$ at the next-to-leading order (NLO) approximation, with a specific initial condition at ${\mu}_{0}$. The dipole-pion cross section at small Bjorken variable $\beta$ is being considered over a wide range of transverse separations $r$. Using the Laplace transformation technique, we describe the determination of the dipole-pion cross section based on the gluon distribution at the initial scale ${\mu}_{0}$ within a kinematic region characterized by low values of the Bjorken variable $\beta$. We found that geometric scaling for the dipole-pion cross section holds approximately within a wide kinematic region of $rQ_{s}$. The cross section saturates at large dipole sizes.
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G. R. Boroun, B. Z. Kopeliovich. 2025-04-17. Dipole-pion cross section in the saturation regime. https://doi.org/10.1103/y567-4tb6
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