Proton hot spots and exclusive vector meson production

Abstract
We explore consequences of the existence of gluonic hot spots inside the proton for coherent and incoherent exclusive vector meson production cross sections in deep inelastic scattering. By working in the dilute limit of the Color Glass Condensate framework to compute the cross sections for Gaussian hot spots of fluctuating color charges and employing a nonrelativistic vector meson wave function, we are able to perform large parts of the calculation analytically. We find that the coherent cross section is sensitive to both the size of the target and the structure of the probe. The incoherent cross section is dominated by color fluctuations at small transverse momentum transfer (t), by proton and hot spot sizes as well as the structure of the probe at medium t and again by color fluctuations at large t. While the t-dependence of the cross section is well reproduced in our model, the relative normalization between the coherent and the incoherent cross sections points to the need for additional fluctuations in the proton.
Main Authors
Format
Articles Research article
Published
2022
Series
Subjects
Publication in research information system
Publisher
American Physical Society (APS)
The permanent address of the publication
https://urn.fi/URN:NBN:fi:jyu-202301041125Käytä tätä linkitykseen.
Review status
Peer reviewed
ISSN
2470-0010
DOI
https://doi.org/10.1103/PhysRevD.106.074025
Language
English
Published in
Physical Review D
Citation
License
CC BY 4.0Open Access
Funder(s)
Research Council of Finland
Research Council of Finland
European Commission
European Commission
European Commission
Funding program(s)
Academy Project, AoF
Centre of Excellence, AoF
RIA Research and Innovation Action, H2020
ERC Advanced Grant
ERC European Research Council, H2020
Akatemiahanke, SA
Huippuyksikkörahoitus, SA
RIA Research and Innovation Action, H2020
ERC Advanced Grant
ERC European Research Council, H2020
Research Council of FinlandEuropean CommissionEuropean research council
Additional information about funding
S. D. acknowledges the support of the Vilho, Yrjö and Kalle Väisälä Foundation. S. S. acknowledges support by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) through the CRC-TR 211 ’Strong-interaction matter under extreme conditions’- Project No. 315477589—TRR 211. S. D. and T. L. have been supported by the Academy of Finland, by the Centre of Excellence in Quark Matter (Project No. 346324) and Project No. 321840. This work has also been supported under the European Union’s Horizon 2020 research and innovation programme by the STRONG-2020 project (Grant Agreement No. 824093) and by the European Research Council, Grant Agreements No. ERC-2015-CoG-681707 and No. ERC-2018-AdG-835105. The content of this article does not reflect the official opinion of the European Union and responsibility for the information and views expressed therein lies entirely with the authors.
Copyright© Authors, 2022

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