Partonic behavior of string scattering amplitudes from holographic QCD models
Massimo Bianchi, Maurizio Firrotta, Jacob Sonnenschein, Dorin Weissman

TL;DR
This paper investigates how string scattering amplitudes in holographic QCD models exhibit partonic behavior at high energies, analyzing various backgrounds and their analytic structures, and comparing fixed angle and Regge regimes.
Contribution
It extends the Polchinski-Strassler approach by analyzing multiple holographic backgrounds and exploring the analytic structure and asymptotic behavior of scattering amplitudes.
Findings
Amplitudes show branch cuts and finite imaginary parts due to holographic coordinate dependence.
Different models yield distinct power-law behaviors in fixed angle scattering.
Amplitudes for mesons exhibit similar qualitative behavior as for closed strings.
Abstract
We study the emergence of partonic behavior in scattering processes at large Mandelstam's variable from string amplitudes in holographic backgrounds. We generalize the approach of Polchinski and Strassler (2001) in two ways. (i) We analyze several holographic confining backgrounds in particular the hard wall model, the soft wall model and Witten's model. (ii) In addition to deriving the asymptotic behavior of the amplitudes at fixed angle and in the Regge limit, we also expand the amplitudes around their poles, integrate over the holographic direction and then re-sum the expansion. Due to dependence of the string tension on the holographic coordinate, the resulting singularities take the form of branch points rather than poles and the amplitudes display branch cuts and acquire a finite imaginary part. This may signal the failure of the PS prescription to reproduce the correct…
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Taxonomy
TopicsQuantum Chromodynamics and Particle Interactions · Black Holes and Theoretical Physics · Particle physics theoretical and experimental studies
