The breathing-mode giant monopole resonance and the surface compressibility in the relativistic mean-field theory
M.M. Sharma

TL;DR
This paper investigates the giant monopole resonance in nuclear physics using relativistic mean-field models, revealing how different Lagrangian models affect the resonance energy and emphasizing the importance of calibrating nuclear interactions.
Contribution
It demonstrates that the GMR response varies significantly across different RMF Lagrangian models due to differences in surface incompressibility and density dependence, impacting the extraction of nuclear matter incompressibility.
Findings
Different Lagrangian models produce distinct GMR energies for the same $K_\infty$.
Surface incompressibility $K_{surf}$ varies with the model, affecting GMR response.
Calibrating the density dependence of nuclear interactions is necessary for accurate $K_\infty$ extraction.
Abstract
The breathing-mode isoscalar giant monopole resonance (GMR) is investigated using the generator coordinate method within the relativistic mean-field (RMF) theory. Employing the Lagrangian models of the nonlinear- model (NL), the scalar-vector interaction model (SVI) and the - coupling model (SIGO), we show that each Lagrangian model exhibits a distinctly different GMR response. Consequently, Lagrangian models yield a different value of the GMR energy for a given value of the nuclear matter incompressibility . It is shown that this effect arises largely from a different value of the surface incompressibility inherent to each Lagrangian model, thus giving rise to the ratio which depends upon the Lagrangian model used. This is attributed to a difference in the density dependence of the meson masses and hence to the…
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