论文标题
调查霍伊尔状态的预测呼吸模式激发
Investigating the predicted breathing-mode excitation of the Hoyle state
论文作者
论文摘要
$ \ mathrm {^{12} c} $ $ - $尤其是$ - $ - $ - $ - $ - $ - $ - $ - $ - $ - $的知识对于我们对天体重要性重要的$3α$反应和$α$α$ - 零件聚类至关重要。多个理论模型预测,霍伊尔状态的呼吸模式在$ e_ {x} \大约9 $ meV中,对应于基础$α$ clusters的径向内振荡。 $ \ MATHRM {^{12} C}(α,α^{\ prime})\ Mathrm {^{12} c} $和$ \ MATHRM {^^{14} c}(p,p,p,t)呼吸模式。对带有R-Matrix线形的包含光谱的自洽的同时分析,以及带电粒子衰减的角度分布,在$ e_ {x} \ 9 $ MEV处提供了明确的证据,证明了高度集体的过量单极强度。使用拟合度的实验观察到的包容性产量的繁殖,对于各个宽状态,人口比一致,需要额外的单极强度来源。将这种额外的单极共振解释为Hoyle状态的呼吸模式激发,将提供支持Hoyle状态本身的$ \ Mathcal {D} _ {3H} $对称性的证据。多余的单极强度可能使对Hoyle状态的性质的分析变得复杂,从而改变了$3α$速率在$ T_ {9} \ GTRSIM 2 $时的温度依赖性,最终,预测的爆炸性恒星中的核合成。
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. Multiple theoretical models have predicted a breathing mode of the Hoyle State at $E_{x} \approx 9$ MeV, corresponding to a radial in-phase oscillation of the underlying $α$ clusters. 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 in order to search for this predicted breathing mode. A self-consistent, simultaneous analysis of the inclusive spectra with R-matrix lineshapes, together with angular distributions of charged-particle decay, yielded clear evidence for excess monopole strength at $E_{x} \approx 9$ MeV which is highly collective. Reproduction of the experimentally observed inclusive yields using a fit, with consistent population ratios for the various broad states, required an additional source of monopole strength. The interpretation of this additional monopole resonance as the breathing-mode excitation of the Hoyle state would provide evidence supporting a $\mathcal{D}_{3h}$ symmetry for the Hoyle state itself. The excess monopole strength may complicate analysis of the properties of the Hoyle state, modifying the temperature dependence of the $3α$ rate at $T_{9} \gtrsim 2$ and ultimately, the predicted nucleosynthesis in explosive stars.