Low-energy quadrupole states in neutron-rich tin nuclei
E. Y\"uksel, G. Col\`o, E. Khan, and Y. F. Niu

TL;DR
This study investigates low-energy quadrupole states in neutron-rich tin nuclei using self-consistent quasiparticle random phase approximation, revealing their sensitivity to shell structure and neutron number, and their potential to inform about shell evolution.
Contribution
It provides a detailed analysis of low-energy quadrupole states in tin isotopes, highlighting their non-collective nature and the impact of shell filling on their properties.
Findings
Low-energy quadrupole states are sensitive to shell structure changes.
The first 2+ state decreases in strength with neutron number.
States above 5 MeV switch from proton to neutron dominance.
Abstract
We present a study on the isoscalar quadrupole strength in tin nuclei, focusing mainly on the low-energy region. The calculations are performed using the Skyrme type energy density functionals within the fully self-consistent quasiparticle random phase approximation, allowing for a good description of the experimental data for the first 2 state and the isoscalar giant quadrupole resonance. It is found that the first state and the low-energy quadrupole states between 3 and 6 MeV display an opposite behavior with increasing neutron number. While the strength of the first state decreases, some excited states start to accumulate between 3 and 6 MeV, and increase their strength with increasing neutron number. This low-energy region between 3 and 6 MeV is quite sensitive to the changes in the shell structure with increasing neutron number. In particular, between Sn and…
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