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Possibility of quantum Hall effect in dense quark matter environments: A chiral model approach

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arxiv 2410.22890 v2 pith:IAMZXMCH submitted 2024-10-30 nucl-th astro-ph.HEhep-phhep-th

Possibility of quantum Hall effect in dense quark matter environments: A chiral model approach

classification nucl-th astro-ph.HEhep-phhep-th
keywords quantumeffecthallmagneticdensityneutronpossibilitybaryon
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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A high baryon density and strong magnetic fields are expected in peripheral collisions in heavy ion collision experiments, such as the upcoming CBM experiment at FAIR in Germany and NICA in Russia. Such densities are also likely in the core of massive neutron stars, possibly with mixed quark-hadron phases. We employed the chiral effective model to obtain the constituent quark mass in this non-perturbative QCD regime. A quantized version of conductivity and resistivity is found reliable in the quantum domain of low density and high magnetic fields. Landau quantization gives rise to phenomena similar to SdH oscillations and quantum Hall effect in this regime. We have used a density-dependent magnetic field to observe SdH-type oscillations and the possibility of the quantum Hall effect in the interior of neutron stars where the magnetic field varies as a function of the baryon density. Our results indicate the possibility of observing the quantum Hall effect in a neutron star environment.

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  1. Towards compressed baryonic matter densities: D meson diffusion

    nucl-th 2026-07 conditional novelty 4.0

    Using relaxation-time kinetic theory with a chiral hadronic model, the authors estimate that D meson spatial diffusion in dense nuclear matter decreases rapidly in a dilute-gas regime and mildly in a degenerate-gas regime.