Relativistic mean-field interaction with density-dependent meson-nucleon vertices based on microscopical calculations
作者:X. Roca-Maza, X. Viñas, M. Centelles, P. Ring, Peter Schuck · 发表于:Physical Review C · 年份:2011 · DOI:10.1103/physrevc.84.054309 · 被引用次数:208 · 研究领域:Nuclear physics research studies、Quantum Chromodynamics and Particle Interactions、High-pressure geophysics and materials
Although ab initio calculations of relativistic Brueckner theory lead to large scalar isovector fields in nuclear matter, at present, successful versions of covariant density functional theory neglect the interactions in this channel. A new high-precision density functional DD-ME$\ensuremath{\delta}$ is presented which includes four mesons, $\ensuremath{\sigma}$, $\ensuremath{\omega}$, $\ensuremath{\delta}$, and $\ensuremath{\rho}$, with density-dependent meson-nucleon couplings. It is based to a large extent on microscopic ab initiocalculations in nuclear matter. Only four of its parameters are determined by adjusting to binding energies and charge radii of finite nuclei. The other parameters, in particular the density dependence of the meson-nucleon vertices, are adjusted to nonrelativistic and relativistic Brueckner calculations of symmetric and asymmetric nuclear matter. The isovector effective mass ${m}_{p}^{*}\ensuremath{-}{m}_{n}^{*}$ derived from relativistic Brueckner theory is used to determine the coupling strength of the $\ensuremath{\delta}$ meson and its density dependence.