High Energy Physics - Phenomenology
[Submitted on 22 Feb 2016 (v1), last revised 9 Mar 2017 (this version, v3)]
Title:Electromagnetic spectral properties and Debye screening of a strongly magnetized hot medium
View PDFAbstract:We have evaluated the electromagnetic spectral function and its spectral properties by computing the one-loop photon polarization tensor in presence of magnetic field, particularly in a strong field approximation compared to the thermal scale. When the magnetic scale is higher than the thermal scale the lowest Landau level (LLL) becomes effectively (1+1) dimensional strongly correlated system that provides a kinematical threshold based on the mass scale. Beyond this threshold the photon strikes the LLL and the spectral strength starts with a high value due to the dimensional reduction and then falls off with increase of the photon energy due to LLL dynamics in a strong field approximation. This strongly enhances the dilepton rate over the thermal perturbative leading order (Born) rate at very low invariant mass. We have also investigated the electromagnetic screening by computing the Debye screening mass and it depends distinctively on three different scales (mass of the quasiquark, temperature and the magnetic field strength) of a hot magnetized system. The mass dependence of the Debye screening supports the occurrence of a magnetic catalysis effect in the strong field approximation.
Submission history
From: Aritra Bandyopadhyay [view email][v1] Mon, 22 Feb 2016 13:39:39 UTC (1,269 KB)
[v2] Sun, 11 Dec 2016 19:14:09 UTC (1,272 KB)
[v3] Thu, 9 Mar 2017 17:04:25 UTC (1,272 KB)
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