English

Fierz-complete NJL model study III: Emergence from quark-gluon dynamics

High Energy Physics - Phenomenology 2020-02-19 v1 Nuclear Theory

Abstract

Our understanding of the dynamics and the phase structure of dense strong-interaction matter is to a large extent still built on the analysis of low-energy models, such as those of the Nambu-Jona-Lasinio-type. In this work, we analyze the emergence of the latter class of models at intermediate and low energy scales from fundamental quark-gluon interactions. To this end, we study the renormalization group flow of a Fierz-complete set of four-quark interactions and monitor their strength at finite temperature and quark chemical potential. At small quark chemical potential, we find that the scalar-pseudoscalar interaction channel is dynamically rendered most dominant by the gauge degrees of freedom, indicating the formation of a chiral condensate. Moreover, the inclusion of quark-gluon interactions leaves a significant imprint on the dynamics as measured by the curvature of the finite-temperature phase boundary which we find to be in accordance with lattice QCD results. At large quark chemical potential, we then observe that the dominance pattern of the four-quark couplings is changed by the underlying quark-gluon dynamics, without any fine-tuning of the four-quark couplings. In this regime, the scalar-pseudoscalar interaction channel becomes subleading and the dominance pattern suggests the formation of a chirally symmetric diquark condensate. In particular, our study confirms the importance of explicit UA(1)U_{\mathrm{A}}(1) breaking for the formation of this type of condensate at high densities.

Keywords

Cite

@article{arxiv.1909.06298,
  title  = {Fierz-complete NJL model study III: Emergence from quark-gluon dynamics},
  author = {Jens Braun and Marc Leonhardt and Martin Pospiech},
  journal= {arXiv preprint arXiv:1909.06298},
  year   = {2020}
}

Comments

16 pages, 7 figures, 1 table

R2 v1 2026-06-23T11:14:43.204Z