QCD Phase Diagram for Large $N_f$ : Analysis from Contact Interaction Effective Potential

Fuente: arXiv
Saved in:
Bibliographic Details
Main Author: Ahmad, Aftab
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908276795375616
author Ahmad, Aftab
author_facet Ahmad, Aftab
contents In this paper, we discuss the impact of a higher number of light quark flavors, $N_f$, on the QCD phase diagram under extreme conditions. Our formalism is based on the Schwinger-Dyson equation, employing a specific symmetry-preserving vector-vector flavor-dressed contact interaction model of quarks in Landau gauge, utilizing the rainbow-Ladder truncation. We derive expressions for the dressed quark mass $M_f$ and effective potential $Ω^{f}$ at zero, at finite temperature $T$ and the quark chemical potential $μ$. The transition between chiral symmetry breaking and restoration is triggered by the effective potential of the contact interaction, whereas the confinement and deconfinement transition is approximated from the confinement length scale $\tildeτ_{ir}$. Our analysis reveals that at $(T = μ= 0)$, increasing $N_f$ leads to the restoration of chiral symmetry and the deconfinement of quarks when $N_f$ reaches its critical value, $N^{c}_{f} \approx 8$. At this critical value, In the chiral limit ($m_f = 0$), the global minimum of the effective potential occurs at the point where the dressed quark mass approaches zero ($M_f \rightarrow 0$). However, when a bare quark mass of $m_f = 7$ MeV is introduced, the global minimum shifts slightly to a nonzero value, approaching $M_f \rightarrow m_f$. At finite $T$ and $μ$, we illustrate the QCD phase diagram in the $(T^{χ,C}_{c} -μ)$ plane, for various numbers of light quark flavors, noting that both the critical temperature $T_c$ and the critical chemical potential $μ_c $ for chiral symmetry restoration and deconfinement decrease as $ N_f $ increases. Moreover, the critical endpoint $(T_{EP}, μ_{EP})$ also shifts to lower values with increasing $N_f $. Our findings are consistent with other low-energy QCD approaches.
format Preprint
id arxiv_https___arxiv_org_abs_2503_16903
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle QCD Phase Diagram for Large $N_f$ : Analysis from Contact Interaction Effective Potential
Ahmad, Aftab
High Energy Physics - Phenomenology
High Energy Physics - Theory
Nuclear Theory
In this paper, we discuss the impact of a higher number of light quark flavors, $N_f$, on the QCD phase diagram under extreme conditions. Our formalism is based on the Schwinger-Dyson equation, employing a specific symmetry-preserving vector-vector flavor-dressed contact interaction model of quarks in Landau gauge, utilizing the rainbow-Ladder truncation. We derive expressions for the dressed quark mass $M_f$ and effective potential $Ω^{f}$ at zero, at finite temperature $T$ and the quark chemical potential $μ$. The transition between chiral symmetry breaking and restoration is triggered by the effective potential of the contact interaction, whereas the confinement and deconfinement transition is approximated from the confinement length scale $\tildeτ_{ir}$. Our analysis reveals that at $(T = μ= 0)$, increasing $N_f$ leads to the restoration of chiral symmetry and the deconfinement of quarks when $N_f$ reaches its critical value, $N^{c}_{f} \approx 8$. At this critical value, In the chiral limit ($m_f = 0$), the global minimum of the effective potential occurs at the point where the dressed quark mass approaches zero ($M_f \rightarrow 0$). However, when a bare quark mass of $m_f = 7$ MeV is introduced, the global minimum shifts slightly to a nonzero value, approaching $M_f \rightarrow m_f$. At finite $T$ and $μ$, we illustrate the QCD phase diagram in the $(T^{χ,C}_{c} -μ)$ plane, for various numbers of light quark flavors, noting that both the critical temperature $T_c$ and the critical chemical potential $μ_c $ for chiral symmetry restoration and deconfinement decrease as $ N_f $ increases. Moreover, the critical endpoint $(T_{EP}, μ_{EP})$ also shifts to lower values with increasing $N_f $. Our findings are consistent with other low-energy QCD approaches.
title QCD Phase Diagram for Large $N_f$ : Analysis from Contact Interaction Effective Potential
topic High Energy Physics - Phenomenology
High Energy Physics - Theory
Nuclear Theory
url https://arxiv.org/abs/2503.16903