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(Reference retrieved automatically from Web of Science through information on FAPESP grant and its corresponding number as mentioned in the publication by the authors.)

Gluon dynamics from an ordinary differential equation

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Author(s):
Aguilar, A. C. [1] ; Ferreira, M. N. [1] ; Papavassiliou, J. [2, 3, 4]
Total Authors: 3
Affiliation:
[1] Univ Campinas UNICAMP, Inst Phys Gleb Wataghin, BR-13083859 Campinas, SP - Brazil
[2] CSIC, Valencia 46100 - Spain
[3] Univ Valencia, Dept Theoret Phys, Valencia 46100 - Spain
[4] Univ Valencia, IFIC, Valencia 46100 - Spain
Total Affiliations: 4
Document type: Journal article
Source: EUROPEAN PHYSICAL JOURNAL C; v. 81, n. 1 JAN 20 2021.
Web of Science Citations: 1
Abstract

We present a novel method for computing the nonperturbative kinetic term of the gluon propagator from an ordinary differential equation, whose derivation hinges on the central hypothesis that the regular part of the three-gluon vertex and the aforementioned kinetic term are related by a partial Slavnov-Taylor identity. The main ingredients entering in the solution are projection of the three-gluon vertex and a particular derivative of the ghost-gluon kernel, whose approximate form is derived from a Schwinger-Dyson equation. Crucially, the requirement of a pole-free answer determines the initial condition, whose value is calculated from an integral containing the same ingredients as the solution itself. This feature fixes uniquely, at least in principle, the form of the kinetic term, once the ingredients have been accurately evaluated. In practice, however, due to substantial uncertainties in the computation of the necessary inputs, certain crucial components need be adjusted by hand, in order to obtain self-consistent results. Furthermore, if the gluon propagator has been independently accessed from the lattice, the solution for the kinetic term facilitates the extraction of the momentum-dependent effective gluon mass. The practical implementation of this method is carried out in detail, and the required approximations and theoretical assumptions are duly highlighted. (AU)

FAPESP's process: 20/12795-1 - Evolution of the energy-momentum tensor during the pre-equilibrium phase of a heavy-ion collision
Grantee:Antonio Maurício Soares Narciso Ferreira
Support Opportunities: Scholarships in Brazil - Post-Doctoral
FAPESP's process: 17/05685-2 - Hadronic physics in high energy nuclear collisions
Grantee:Jun Takahashi
Support Opportunities: Special Projects