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arXiv · 1705.09097

Tetrahedral $4α$ and $^{12}\textrm{C}+α$ cluster structures in $^{16}$O

Abstract

We have investigated structures of the ground and excited states of $^{16}\textrm{O}$ with the method of variation after spin-parity projection in the antisymmetrized molecular dynamics model combined with the generator coordinate method of $^{12}\textrm{C}+α$ cluster. The calculation reasonably reproduces the experimental energy spectra, $E2$, $E3$, $E4$, $IS1$ transitions, and $α$-decay properties. The formation of 4 $α$ clusters has been confirmed from nucleon degrees of freedom in the AMD model without assuming existence of any clusters. They form "tetrahedral" $4α$- and $^{12}\textrm{C}+α$-cluster structures. The $^{12}\textrm{C}+α$ structure constructs the $K^π=0^+$ band consisting of the $0^+_2$, $2^+_1$, and $4^+_1$ states and the $K^π=0^-$ band of the $1^-_2$, $3^-_2$, and $5^-_1$ states. The $0^+_1$, $3^-_1$, and $4^+_2$ states are assigned to the ground band constructed from the tetrahedral 4$α$ structure. The $0^+_1$ and $3^-_1$ are approximately interpreted as $T_d$ band members with the ideal tetrahedral configuration. The ground state $4α$ correlation plays an important role in enhancement of the $E3$ transition strength to the $3^-_1$. The $4^+_2$ state is not the ideal $T_d$ member but constructed from a distorted tetrahedral $4α$ structure. Moreover, significant state mixing of the tetrahedral $4α$ and $^{12}\textrm{C}+α$ cluster structures occurs between $4^+_1$ and $4^+_2$ states, indicating that the $T_d$ configuration of $4α$ is rather fragile at $J^π=4^+$.

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BibTeXRIS

Yoshiko Kanada-En'yo. 2017-05-25. Tetrahedral $4α$ and $^{12}\textrm{C}+α$ cluster structures in $^{16}$O. https://doi.org/10.1103/physrevc.96.034306

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