Nuclear structure properties of $^{193-200}$Hg isotopes within large-scale shell model calculations

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Main Authors: Sahoo, Subhrajit, Srivastava, Praveen C., Shimizu, Noritaka, Utsuno, Yutaka
Format: Preprint
Published: 2024
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author Sahoo, Subhrajit
Srivastava, Praveen C.
Shimizu, Noritaka
Utsuno, Yutaka
author_facet Sahoo, Subhrajit
Srivastava, Praveen C.
Shimizu, Noritaka
Utsuno, Yutaka
contents Large-scale shell-model calculations have been performed to study the nuclear structure properties of Hg isotopes with mass varying from $A=193$ to $A=200$. The shell-model calculations are carried out in the 50 $\leq Z \leq$ 82 and 82 $ \leq N \leq$ 126 model space using monopole-based truncation. We present detailed studies on low-energy excitation spectra, energy systematics, and collective properties of Hg isotopes, such as reduced transition probabilities, quadrupole, and magnetic moments along the isotopic chain. The evolution of wave function configurations with spin is analyzed in the case of even-$A$ Hg isotopes. The shell-model results are in reasonable agreement with the experimental data and predictions are made where experimental data are unavailable. The shapes of Hg isotopes are also investigated through the energy-surface plots.
format Preprint
id arxiv_https___arxiv_org_abs_2412_16518
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nuclear structure properties of $^{193-200}$Hg isotopes within large-scale shell model calculations
Sahoo, Subhrajit
Srivastava, Praveen C.
Shimizu, Noritaka
Utsuno, Yutaka
Nuclear Theory
Nuclear Experiment
Large-scale shell-model calculations have been performed to study the nuclear structure properties of Hg isotopes with mass varying from $A=193$ to $A=200$. The shell-model calculations are carried out in the 50 $\leq Z \leq$ 82 and 82 $ \leq N \leq$ 126 model space using monopole-based truncation. We present detailed studies on low-energy excitation spectra, energy systematics, and collective properties of Hg isotopes, such as reduced transition probabilities, quadrupole, and magnetic moments along the isotopic chain. The evolution of wave function configurations with spin is analyzed in the case of even-$A$ Hg isotopes. The shell-model results are in reasonable agreement with the experimental data and predictions are made where experimental data are unavailable. The shapes of Hg isotopes are also investigated through the energy-surface plots.
title Nuclear structure properties of $^{193-200}$Hg isotopes within large-scale shell model calculations
topic Nuclear Theory
Nuclear Experiment
url https://arxiv.org/abs/2412.16518