Low-energy monopole strength in spherical and deformed nuclei : cluster and soft modes
F. Mercier, J.-P. Ebran, E. Khan

TL;DR
This paper systematically analyzes low-energy monopole strength in nuclei, revealing diverse modes such as cluster vibrations, soft modes, and pair excitations, influenced by neutron excess, deformation, and pairing effects.
Contribution
It provides a comprehensive QRPA-based study of low-energy monopole excitations across isotopic chains, highlighting the influence of nuclear structure on these modes.
Findings
Neutron excess induces low-energy excitations reflecting single-particle features.
Deformation causes splitting and complex patterns of low-energy resonances.
Cluster-like excitations persist in neutron-rich nuclei, with valence neutrons forming molecular orbitals.
Abstract
Background : Several recent experiments report significant low-energy isoscalar monopole strength, below the giant resonance, in various nuclei. In light -conjugate nuclei, these low-energy resonances were recently interpreted as cluster vibration modes. However, the nature of these excitations in neutron-rich nuclei remain elusive. Purpose : The present work provides a systematic analysis of the low-energy monopole strength in isotopic chains, from Neon to Germanium, in order to monitor and understand its nature and conditions of emergence. Methods : We perform covariant quasiparticle random phase approximation (QRPA) calculations, formulated within the finite amplitude method (FAM), on top of constrained relativistic Hartree-Bogoliubov (RHB) reference states. Results : Neutron excess leads to the appearance of low-energy excitations according to a systematic pattern…
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Taxonomy
TopicsNuclear physics research studies · Nuclear Physics and Applications · Quantum, superfluid, helium dynamics
