TMD factorization in diffractive heavy quark production in photon-nucleus collisions

A bstract Using the Colour Glass Condensate effective theory, we study the diffractive production of a massive quark-antiquark pair accompanied by a gluon in coherent photon-nucleus collisions at high energy. This partonic configuration provides the leading twist contribution to the cross section in the correlation limit where two of the partons are hard and nearly back to back in the transverse plane, while the third one is semi-hard, with a transverse momentum of the order of the nuclear saturation momentum. We consider two scenarios: (i) a hard quark-antiquark pair together with a semi-hard gluon; in this case we demonstrate transverse momentum dependent (TMD) factorisation with a mass-dependent “hard” factor and the standard expression for the gluon diffractive TMD, and (ii) a hard antiquark-gluon pair and a semi-hard quark; in this case we find TMD factorisation with a mass-independent “hard” factor and a mass-dependent quark diffractive TMD, which represents a new result. We show that increasing the quark mass reduces (or even washes out) the effects of gluon saturation on the quark diffractive TMD. In particular, it leads to the suppression of the Cronin peak that we observe in the massless limit. Our results are the basis for future phenomenological studies of quarkonium and open charm production in the saturation regime in ultraperipheral collisions at the Large Hadron Collider, and in deep inelastic scattering at the Electron-Ion Collider.

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Publication Details

Journal
Journal of High Energy Physics
Published
2026-09-14
DOI
https://doi.org/10.1007/jhep09(2026)169
Primary Topic
High-Energy Particle Collisions Research
Type
article
Field-Weighted Citation Impact
0.00

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article

TMD factorization in diffractive heavy quark production in photon-nucleus collisions

Paul Caucal, Farid Salazar, Edmond Iancu, Tuomas Lappi et al.
Journal of High Energy Physics
High-Energy Particle Collisions Research
article

TMD factorization in diffractive heavy quark production in photon-nucleus collisions

Paul Caucal, Farid Salazar, Edmond Iancu, Tuomas Lappi, Patricia Gimeno-Estivill
article en

Abstract

A bstract Using the Colour Glass Condensate effective theory, we study the diffractive production of a massive quark-antiquark pair accompanied by a gluon in coherent photon-nucleus collisions at high energy. This partonic configuration provides the leading twist contribution to the cross section in the correlation limit where two of the partons are hard and nearly back to back in the transverse plane, while the third one is semi-hard, with a transverse momentum of the order of the nuclear saturation momentum. We consider two scenarios: (i) a hard quark-antiquark pair together with a semi-hard gluon; in this case we demonstrate transverse momentum dependent (TMD) factorisation with a mass-dependent “hard” factor and the standard expression for the gluon diffractive TMD, and (ii) a hard antiquark-gluon pair and a semi-hard quark; in this case we find TMD factorisation with a mass-independent “hard” factor and a mass-dependent quark diffractive TMD, which represents a new result. We show that increasing the quark mass reduces (or even washes out) the effects of gluon saturation on the quark diffractive TMD. In particular, it leads to the suppression of the Cronin peak that we observe in the massless limit. Our results are the basis for future phenomenological studies of quarkonium and open charm production in the saturation regime in ultraperipheral collisions at the Large Hadron Collider, and in deep inelastic scattering at the Electron-Ion Collider.

Journal of High Energy PhysicsVol. 2026(9)
Centre National de la Recherche Scientifique (FR), University of Helsinki (FI), Brookhaven National Laboratory (US), Commissariat à l'Énergie Atomique et aux Énergies Alternatives (FR), Université Paris-Saclay (FR), Temple College (US), IMT Atlantique (FR), CEA Paris-Saclay (FR), Institut de Physique Théorique (FR), Temple University (US), University of Jyväskylä (FI)
National Science Foundation, U.S. Department of Energy, European Commission, Agence Nationale de la Recherche, Suomen Kulttuurirahasto, Office of Science, RIKEN, Nuclear Physics, Brookhaven National Laboratory
Openalex Percentile: Top 49%
High-Energy Particle Collisions Research
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