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Momentum broadening of heavy quark in a magnetized thermal QCD medium

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arxiv 2004.11092 v2 pith:SHCJ33EM submitted 2020-04-23 hep-ph

classification hep-ph
keywords heavyfieldquarkkappamagneticdiffusionparallelcoefficients
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abstract

Anisotropic momentum diffusion coefficients of heavy quarks have been computed in a strongly magnetized quark-gluon plasma beyond the static limit within the framework of Langevin dynamics. Depending on the orientation of the motion of the heavy quark with respect to the direction of the magnetic field, five momentum diffusion coefficients of heavy quark have been estimated in the magnetized thermal medium. Specifically, we have focussed our attention to temperature range and strength of magnetic field satisfying the condition, $\it{i.e.}$ $M\gg\sqrt{eB}\gg T$, $M$ being the mass of heavy quark. The light quarks/antiquarks follow $1+1-$dimensional lowest Landau level (LLL) kinematics, and heavy quark dynamics are not directly affected by the magnetic field in the medium. The thermal gluon contribution to the diffusion coefficient is proportions to $T^3$, whereas, the contribution of light quarks in the lowest Landau state to the same is seen to be proportional to $T|eB|$. Furthermore, it is observed that for the case of heavy quark motion parallel to the magnetic field, the component of diffusion coefficient transverse both to the field and the heavy quark velocity $(\kappa^{\parallel}_{TT})$ turns out to be dominant as compared to the component longitudinal to both the field and motion $(\kappa^{\parallel}_{LL})$, $i.e.$, $\kappa^{\parallel}_{TT}\gg \kappa^{\parallel}_{LL}$. Further, for the case of heavy quark moving perpendicular to the magnetic field, it is seen that the diffusion coefficients transverse to the magnetic field are dominant, i.e., $\kappa^{\perp}_{LT}, \kappa^{\perp}_{TT}\gg \kappa^{\perp}_{TL}$.

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  1. Causality and stability of magnetohydrodynamics for an ultrarelativistic locally neutral two-component gas

    nucl-th 2025-05 conditional novelty 6.0 of 10

    Linear stability and causality of the second-order magnetohydrodynamics from Ref. [64] are verified for any magnetic field in a locally neutral two-component massless plasma.

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