论文标题

$ \ mathrm {^{^{12} c} $中激发状态的多探针研究:删除霍伊尔州和$ e_ {x} = 13 $ mev之间的单极强度来源

Multi-probe study of excited states in $\mathrm{^{12}C}$: disentangling the sources of monopole strength between the Hoyle state and $E_{x} = 13$ MeV

论文作者

Li, K. C. W., Smit, F. D., Adsley, P., Neveling, R., Papka, P., Nikolskii, E., Brümmer, J. W., Donaldson, L. M., Freer, M., Harakeh, M. N., Nemulodi, F., Pellegri, L., Pesudo, V., Wiedeking, M., Buthelezi, E. Z., Chudoba, V., Förtsch, S. V., Jones, P., Kamil, M., Mira, J. P., O'Neill, G. G., Sideras-Haddad, E., Singh, B., Steyn, G. F., Swartz, J. A., Usman, I. T., van Zyl, J. J.

论文摘要

尤其是hoyle状态的$ \ mathrm {^{12} c} $中低洼的单极强度的知识对于我们对天体重要性重要的$3α$反应和$α$ - 粒子聚类的理解至关重要。 $ \ mathrm {^{12} c}(α,α^{\ prime})\ Mathrm {^{12} c} $和$ \ Mathrm {^{^{14} c}(p,p,p,t)\ mathrm {^12} c} c}进行了与线形的综合光谱进行的自洽的同时分析,这是由于核动力学和实验效应而导致的失真。在$ e_ {x} \ sim 9 $ meV处发现了明确的证据,尤其是在$ \ mathrm {^{^{12} c}(α,α,α^{\ prime})\ Mathrm {^{^{12} c} c} $反应$ 0^{\ circ} $中。这种额外的强度不能由先前建立的单极状态在$ e_ {x} = 7 $和13 meV之间复制。 $ e_ {x} \ sim 9 $ MEV的额外$ 0^{+} $状态产生了显着改善的数据,并且是Hoyle状态预测的呼吸模式激发的领先候选者。另外,结果可能表明,在$ \ mathrm {^{12} C} $中,天体物理上重要的单极强度的更复杂,具有物理动机的参数化是必需的。

Knowledge of the low-lying monopole strength in $\mathrm{^{12}C}$, the Hoyle state in particular, is crucial for our understanding of both the astrophysically important $3α$ reaction and of $α$-particle clustering. The $\mathrm{^{12}C}(α, α^{\prime})\mathrm{^{12}C}$ and $\mathrm{^{14}C}(p, t)\mathrm{^{12}C}$ reactions were employed to populate states in $^{12}$C. A self-consistent, simultaneous analysis of the inclusive spectra with lineshapes was performed, which accounted for distortion due to nuclear dynamics and experimental effects. Clear evidence was found for excess monopole strength at $E_{x} \sim 9$ MeV, particularly in the $\mathrm{^{12}C}(α, α^{\prime})\mathrm{^{12}C}$ reaction at $0^{\circ}$. This additional strength cannot be reproduced by the previously established monopole states between $E_{x} = 7$ and 13 MeV. An additional $0^{+}$ state at $E_{x} \sim 9$ MeV yielded a significantly improved fit of the data and is the leading candidate for the predicted breathing-mode excitation of the Hoyle state. Alternatively, the results may suggest that a more sophisticated, physically motivated parameterization of the astrophysically important monopole strengths in $\mathrm{^{12}C}$ is required.

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