Effects of Born-Infeld Electrodynamics on Chiral Symmetry Restoration and Meson Susceptibilities in Holographic QCD
Hiwa A. Ahmed, Peshwaz A. Abdoul
Abstract
Within a holographic QCD framework, we numerically investigate chiral symmetry breaking and the associated phase transition at finite temperature and chemical potential. The model is constructed on a nonlinear charged Born-Infeld black hole background. The chiral condensate, extracted from the asymptotic behavior of the bulk scalar field, serves as the primary order parameter. At zero chemical potential, we find a chiral crossover transition for physical quark masses with a pseudocritical temperature of Tpc=0.1477 GeV. In the chiral limit, the transition becomes first-order with a critical temperature of Tc=0.1337 GeV. A critical strange quark mass of ms=37 MeV, at zero light quark mass, separates first- and second-order transition regions. For finite chemical potential (μ) and a physical strange mass (ms=95 MeV) with massless light quarks, the transition remains second-order, with Tc decreasing as μ increases. These results are further supported by the behavior of meson susceptibilities (χπ-χσ), which exhibit a rapid thermal decay and convergence across the phase boundary. Introducing the Born-Infeld parameter β shifts the second-order phase boundary to higher temperatures for smaller β (stabilizing the chirally broken phase) but does not alter the transition order or introduce a critical endpoint within the studied range. Our findings are consistent with previous soft-wall model studies and highlight the significant role of nonlinear bulk electrodynamics in modifying the chiral phase diagram.
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