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Parametrization of light nuclei quasiparticle energy shifts and composition of warm and dense nuclear matter

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arxiv 1101.4685 v2 pith:CLLVMDOW submitted 2011-01-24 nucl-th

Parametrization of light nuclei quasiparticle energy shifts and composition of warm and dense nuclear matter

classification nucl-th
keywords lightmatternuclearnucleiquasiparticledenseenergyequilibrium
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Correlations and the formation of bound states (nuclei) are essential for the properties of nuclear matter in equilibrium as well as in nonequilibrium. In a quantum statistical approach, quasiparticle energies are obtained for the light elements that reflect the influence of the medium. We present analytical fits for the quasiparticle energy shifts of light nuclei that can be used in various applications. This is a prerequisite for the investigation of warm and dense matter that reproduces the nuclear statistical equilibrium and virial expansions in the low-density limit as well as relativistic mean field and Brueckner Hartree-Fock approaches near saturation density.

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Cited by 1 Pith paper

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  1. Medium effects on light clusters from heavy-ion collisions within a relativistic mean-field description

    nucl-th 2026-02 conditional novelty 5.0

    Bayesian fits to Xe+Sn light-cluster yields show in-medium cluster couplings are temperature dependent, but cannot distinguish scalar-attraction from vector-repulsion pictures.