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Polarization tensor of magnetized quark-gluon plasma at nonzero baryon density

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arxiv 2106.09029 v2 pith:ACXLNYHY submitted 2021-06-16 nucl-th hep-phhep-th

classification nucl-thhep-phhep-th
keywords chemicalphotonpotentialbaryonemissiongammanonzerorate
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abstract

We derive a general expression for the absorptive part of the one-loop photon polarization tensor in a strongly magnetized quark-gluon plasma at nonzero baryon chemical potential. To demonstrate the application of the main result in the context of heavy-ion collisions, we study the effect of a nonzero baryon chemical potential on the photon emission rate. The rate and the ellipticity of photon emission are studied numerically as a function the transverse momentum (energy) for several values of temperature and chemical potential. When the chemical potential is small compared to the temperature, the rates of the quark and antiquark splitting processes (i.e., $q\rightarrow q +\gamma$ and $\bar{q}\rightarrow \bar{q} +\gamma$, respectively) are approximately the same. However, the quark splitting gradually becomes the dominant process with increasing the chemical potential. We also find that increasing the chemical potential leads to a growing total photon production rate but has only a small effect on the ellipticity of photon emission. The quark-antiquark annihilation ($q+\bar{q}\rightarrow \gamma$) also contributes to the photon production, but its contribution remains relatively small for a wide range of temperatures and chemical potentials investigated.

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Cited by 3 Pith papers

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  1. Resonant axion and dark photon production in magnetic white dwarfs

    hep-ph 2025-09 conditional novelty 7.0 of 10

    Magnetic fields broaden the resonant conversion of photons to axions and dark photons inside magnetic white dwarfs, enabling emission where none occurred before.

  2. Rotating synchrotron radiation: Photon emission from magnetized and rotating quark-gluon plasma

    hep-ph 2026-02 conditional novelty 6.0 of 10

    Rotation enhances synchrotron photon emission from negatively charged quarks in a magnetized QGP, producing a low-transverse-momentum v2 that can reduce the direct photon puzzle tension.

  3. Asymmetric muon-antimuon emission from $Z^0$ decays: a clear magnetometer in relativistic heavy-ion collisions

    hep-ph 2025-06 reject novelty 6.0 of 10

    A proposal that Z0 to mu+ mu- decays in a strong magnetic field produce negative v2 and harder antimuon pT, offering a potential early-field magnetometer.

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