English

Heavy Quark Diffusion in Strong Magnetic Fields at Weak Coupling and Implications for Elliptic Flow

High Energy Physics - Phenomenology 2016-04-21 v2 Nuclear Theory

Abstract

We compute the momentum diffusion coefficients of heavy quarks, κ\kappa_\parallel and κ\kappa_\perp, in a strong magnetic field BB along the directions parallel and perpendicular to BB, respectively, at the leading order in QCD coupling constant αs\alpha_s. We consider a regime relevant for the relativistic heavy ion collisions, αseBT2eB\alpha_s eB\ll T^2\ll eB, so that thermal excitations of light quarks are restricted to the lowest Landau level (LLL) states. In the vanishing light-quark mass limit, we find κLOαs2TeB\kappa_\perp^{\rm LO}\propto \alpha_s^2 T eB in the leading order that arises from screened Coulomb scatterings with (1+1)-dimensional LLL quarks, while κ\kappa_\parallel gets no contribution from the scatterings with LLL quarks due to kinematic restrictions. We show that the first non-zero leading order contributions to κLO\kappa_\parallel^{\rm LO} come from the two separate effects: 1) the screened Coulomb scatterings with thermal gluons, and 2) a finite light-quark mass mqm_q. The former leads to κLO,gluonαs2T3\kappa_\parallel^{\rm LO,\,gluon} \propto \alpha_s^2 T^3 and the latter to κLO,massiveαs(αseB)1/2mq2\kappa_\parallel^{\rm LO,\,massive}\propto \alpha_s (\alpha_s eB)^{1/2} m_q^2. Based on our results, we propose a new scenario for the large value of heavy-quark elliptic flow observed in RHIC and LHC. Namely, when κκ\kappa_\perp\gg\kappa_\parallel, an anisotropy in drag forces gives rise to a sizable amount of the heavy-quark elliptic flow even if heavy quarks do not fully belong to an ellipsoidally expanding background fluid.

Keywords

Cite

@article{arxiv.1512.03689,
  title  = {Heavy Quark Diffusion in Strong Magnetic Fields at Weak Coupling and Implications for Elliptic Flow},
  author = {Kenji Fukushima and Koichi Hattori and Ho-Ung Yee and Yi Yin},
  journal= {arXiv preprint arXiv:1512.03689},
  year   = {2016}
}

Comments

30 page. 5 figures. Explanations improved; Typos corrected; Published in Phys. Rev. D

R2 v1 2026-06-22T12:07:27.624Z