Chiral and trace anomalies in Deeply Virtual Compton Scattering II: QCD factorization and beyond
Abstract
We extend the discussion of the recently discovered 'anomaly poles' in QCD Compton scattering. We perform the complete one-loop calculation of the Compton amplitude using momentum transfer as the regulator of collinear divergences. In the gluon channel, we confirm the presence of poles in both the real and imaginary parts of the amplitude. In the quark channel, we find unexpected infrared single and double poles. We then perform the one-loop calculation of the leading-twist quark generalized parton distributions (GPDs) for quark and gluon external states with the same regulators and find that all these singular terms can be systematically absorbed into the GPDs, showing that QCD factorization is restored to this order. Having established this, we discuss the fate of the poles. We argue that they become the nonperturbative building blocks of GPDs that encode the chiral and trace anomalies of QCD, in a way consistent with the known constraints these anomalies impose on the nucleon axial and gravitational form factors. The scope of research on GPDs can therefore be expanded to address the manifestation and implications of quantum anomalies in high-energy exclusive processes.
Cite
@article{arxiv.2305.09431,
title = {Chiral and trace anomalies in Deeply Virtual Compton Scattering II: QCD factorization and beyond},
author = {Shohini Bhattacharya and Yoshitaka Hatta and Werner Vogelsang},
journal= {arXiv preprint arXiv:2305.09431},
year = {2023}
}
Comments
22 pages, 2 figures, Finite terms in the one-loop calculation of GPDs in the ERBL region included, version to appear in PRD