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Chiral vortical effect from the compactified D4-branes with smeared D0-brane charge

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arxiv 1608.04922 v3 pith:DMUOKFNL submitted 2016-08-17 hep-th

classification hep-th
keywords chiraleffectfluidvorticalchargechemicald0-branepotential
verification ladder T0 review T1 audit T2 compute T3 formal
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By using the boundary derivative expansion formalism of fluid/gravity correspondence, we study the chiral vortical effect from the compactified D4-branes with smeared D0-brane charge. This background corresponds to a strongly coupled, nonconformal relativistic fluid with a conserved vector current. The presence of the chiral vortical effect is induced by the addition of a Chern-Simons term in the bulk action. Except that the non-dissipative anomalous viscous coefficient and the sound speed rely only on the chemical potential, most of the other thermal and hydrodynamical quantities of the first order depend both on the temperature and the chemical potential. According to our result, the way that the chiral vortical effect coefficient depends on the chemical potential seems irrelevant with whether the relativistic fluid is conformal or not. Stability analysis shows that this anomalous relativistic fluid is stable and the doping of the smeared D0-brane charge will slow down the sound speed.

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