Role of the δ Meson in Softening the Symmetry Energy within the DDRHF Model
Qirui Li, Jinniu Hu, Ying Zhang, Hong Shen
Abstract
We investigate the effects of the isovector-scalar δ meson on the density dependence of the symmetry energy within the density-dependent relativistic Hartree--Fock (DDRHF) framework. As a baseline, we generate 1006 accepted DDRHF parametrizations including the σ, ω, ρ, and π mesons by imposing empirical constraints on the saturation properties of nuclear matter. The resulting symmetry-energy slope parameters are confined to relatively large values, L65--110~MeV. Two representative parametrizations, denoted RHF-NK1 and RHF-NK2, are randomly selected from this ensemble. Starting from these two parametrizations, we introduce the δ meson and readjust the meson--nucleon couplings under the same saturation-property constraints. The numerical optimization shows that small values of L are obtained most efficiently when the δ coupling is taken to be constant. In this case, L is reduced from approximately 73 to 32~MeV, while the binding energy per nucleon, saturation density, symmetry energy, and incompressibility coefficient remain nearly unchanged. A channel-by-channel decomposition shows that the softening is not caused by the direct δ-meson contribution alone, but by a redistribution among the δ, ρ, and π mesons together with the isoscalar Fock contributions. The resulting neutron-star mass--radius relations shift toward smaller radii, indicating that the δ meson provides an efficient additional degree of freedom for controlling the isovector properties of DDRHF models.
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