Electromagnetic spectral function and dilepton rate in a hot magnetized QCD medium
Snigdha Ghosh, Vinod Chandra

TL;DR
This paper investigates how a strong magnetic field affects dilepton production in hot QCD matter, revealing significant enhancements at low invariant masses due to Landau level effects and medium modifications.
Contribution
It introduces a comprehensive formalism incorporating Landau level quantization and effective fugacities to study electromagnetic spectral functions and dilepton rates in a magnetized hot QCD medium.
Findings
Enhanced low invariant mass dilepton production due to Landau cuts.
Magnetic field and medium effects significantly modify the electromagnetic spectral function.
Substantial increase in dilepton rate observed with EOS effects included.
Abstract
The dilepton production rate in hot QCD medium is studied within a effective description of the medium in the presence of magnetic field. This could be done by obtaining the one-loop self energy of photon due to the effective (quasi-) quark loop at finite temperature under an arbitrary external magnetic field while employing the real time formalism of Thermal Field Theory. The effective quarks and gluons encode hot QCD medium effective in terms of their respective effective fugacities. The magnetic field enters in the form of landau level quantization, in the matter sector (quarks, antiquarks). The full Schwinger proper time propagator including all the Landau levels is considered for the quasi quarks while calculating the photon self energy. The electromagnetic Debye screening (in terms of the self-energy) has seen to be influenced both by the hot QCD medium effects and magnetic field.…
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