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Thermodynamics and energy loss in D dimensions from holographic QCD model

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arxiv 2109.02366 v2 pith:2DPX2NCI submitted 2021-09-06 hep-ph hep-th

Thermodynamics and energy loss in D dimensions from holographic QCD model

classification hep-ph hep-th
keywords dimensionsenergyheavylossquarktemperaturecoefficientdependence
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We consider the holographic QCD model with a planar horizon in the D dimensions with different consistent metric solutions. We investigate the black hole thermodynamics, phase diagram and equations of state (EoS) in different dimensions. The temperature and chemical potential dependence of the drag force and diffusion coefficient also have been studied. From the results, the energy loss of heavy quark shows an enhancement near the phase transition temperature in D dimensions. This finding illustrates that the energy loss of heavy quark has a nontrivial and non-monotonic dependence on temperature. Furthermore, we find the heavy quark may lose less energy in higher dimension. The diffusion coefficient is larger in higher dimension.

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Cited by 1 Pith paper

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  1. Spectral Functions of $J/\psi$ Meson in Rotating Thermal Background from Holography

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    In a rotating thermal medium modeled by soft-wall holography, J/ψ spectral peaks split by −ΩJ_z along the rotation axis and acquire projection-dependent distortions for transverse momentum.