Unique first-forbidden $β$-decay transitions in odd-odd and even-even heavy nuclei

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Main Authors: Nabi, Jameel-Un, Cakmak, Necla, Majid, Muhammad, Selam, Cevad
Format: Preprint
Published: 2025
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author Nabi, Jameel-Un
Cakmak, Necla
Majid, Muhammad
Selam, Cevad
author_facet Nabi, Jameel-Un
Cakmak, Necla
Majid, Muhammad
Selam, Cevad
contents The allowed Gamow-Teller (GT) transitions are the most common weak nuclear processes of spin-isospin $(στ)$ type. These transitions play a key role in numerous processes in the domain of nuclear physics. Equally important is their contribution in astrophysics, particularly in nuclear synthesis and supernova-explosions. In situations where allowed GT transitions are not favored, first-forbidden transitions become significant, specifically in medium heavy and heavy nuclei. For neutron-rich nuclei, first-forbidden transitions are favored mainly due to the phase-space amplification for these transitions. In this work we calculate the allowed GT as well as unique first-forbidden (U1F) $|Δ$J$|$ = 2 transitions strength in odd-odd and even-even nuclei in mass range $70\leq A \leq214$. Two different pn-QRPA models were used with a schematic separable interaction to calculate GT and U1F transitions. The inclusion of U1F strength improved the overall comparison of calculated terrestrial $β$-decay half-lives in both models. The \textit{ft} values and reduced transition probabilities for the $2^-\longleftrightarrow 0^+$ transitions were also calculated. We compared our calculations with the previously reported correlated RPA calculation and experimental results. Our calculations are in better agreement with measured data. For stellar applications we further calculated the allowed GT and U1F weak rates. These include $β^{\pm}$-decay rates and electron/positron capture rates of heavy nuclei in stellar matter. Our study shows that positron and electron capture rates command the total weak rates of these heavy nuclei at high stellar temperatures.
format Preprint
id arxiv_https___arxiv_org_abs_2505_06672
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Unique first-forbidden $β$-decay transitions in odd-odd and even-even heavy nuclei
Nabi, Jameel-Un
Cakmak, Necla
Majid, Muhammad
Selam, Cevad
Nuclear Theory
The allowed Gamow-Teller (GT) transitions are the most common weak nuclear processes of spin-isospin $(στ)$ type. These transitions play a key role in numerous processes in the domain of nuclear physics. Equally important is their contribution in astrophysics, particularly in nuclear synthesis and supernova-explosions. In situations where allowed GT transitions are not favored, first-forbidden transitions become significant, specifically in medium heavy and heavy nuclei. For neutron-rich nuclei, first-forbidden transitions are favored mainly due to the phase-space amplification for these transitions. In this work we calculate the allowed GT as well as unique first-forbidden (U1F) $|Δ$J$|$ = 2 transitions strength in odd-odd and even-even nuclei in mass range $70\leq A \leq214$. Two different pn-QRPA models were used with a schematic separable interaction to calculate GT and U1F transitions. The inclusion of U1F strength improved the overall comparison of calculated terrestrial $β$-decay half-lives in both models. The \textit{ft} values and reduced transition probabilities for the $2^-\longleftrightarrow 0^+$ transitions were also calculated. We compared our calculations with the previously reported correlated RPA calculation and experimental results. Our calculations are in better agreement with measured data. For stellar applications we further calculated the allowed GT and U1F weak rates. These include $β^{\pm}$-decay rates and electron/positron capture rates of heavy nuclei in stellar matter. Our study shows that positron and electron capture rates command the total weak rates of these heavy nuclei at high stellar temperatures.
title Unique first-forbidden $β$-decay transitions in odd-odd and even-even heavy nuclei
topic Nuclear Theory
url https://arxiv.org/abs/2505.06672