论文标题
$^{22} $ ne(α,γ)$^{26} $ mg反应的334 keV共振强度的第一个直接限制
First direct limit on the 334 keV resonance strength in the $^{22}$Ne(α,γ)$^{26}$Mg reaction
论文作者
论文摘要
在星星中,$^{22} $ ne和$^4 $的融合可能会产生$^{25} $ mg,而中子的排放或$^{26} $ mg和$γ$ ray。在高温下,($α,n $)通道在低温下占主导地位,在低温下,它的能量受到阻碍。其竞争对手的$^{22} $ ne($α$,$γ$)$^{26} $ mg反应的速度,因此,($α,n $)优势的最低温度由许多核共振控制。这些共振的优势迄今仅间接研究了。目前的工作旨在直接衡量$ e $ _ {r} $ \,= \,$ 334 $ \,$ kev(对应于$ e $ _ {x} $ _ {x} $ \,= \,$ 10949 $ kev,$ kev in $^{26} $ mg)。此处报告的数据是使用高强度$^4 $ he $^+$ beam从Infn Luna 400 kV地下加速器中获得的,无窗,再循环,99.9%,同位素富集的$^{22} $ ne气体目标,以及4 $π$ bismuthate dermanate dermanate dermanate dermantate dermantate dermantate dermantate dermantate汇总$γ$γ$ -ray -re-ray-ray-ray tocter。使用67天的无梁数据和7天的$^4 $ He $^+$ beam在惰性氩目标上确定/天的超低背景率小于0.5计数。允许新的高敏性设置确定第一个直接上限为4.0 $ \,\ times \,$ 10 $^{ - 11} $ eV(置信度为90%),以达到共振强度。最后,此设置的敏感性铺平了进一步研究$^{22} $ ne($α$,$γ$)$^{26} $ mg以较高能量的共振。
In stars, the fusion of $^{22}$Ne and $^4$He may produce either $^{25}$Mg, with the emission of a neutron, or $^{26}$Mg and a $γ$ ray. At high temperature, the ($α,n$) channel dominates, while at low temperature, it is energetically hampered. The rate of its competitor, the $^{22}$Ne($α$,$γ$)$^{26}$Mg reaction, and, hence, the minimum temperature for the ($α,n$) dominance, are controlled by many nuclear resonances. The strengths of these resonances have hitherto been studied only indirectly. The present work aims to directly measure the total strength of the resonance at $E$_{r}$\,=\,$334$\,$keV (corresponding to $E$_{x}$\,=\,$10949$\,$keV in $^{26}$Mg). The data reported here have been obtained using high intensity $^4$He$^+$ beam from the INFN LUNA 400 kV underground accelerator, a windowless, recirculating, 99.9% isotopically enriched $^{22}$Ne gas target, and a 4$π$ bismuth germanate summing $γ$-ray detector. The ultra-low background rate of less than 0.5 counts/day was determined using 67 days of no-beam data and 7 days of $^4$He$^+$ beam on an inert argon target. The new high-sensitivity setup allowed to determine the first direct upper limit of 4.0$\,\times\,$10$^{-11}$ eV (at 90% confidence level) for the resonance strength. Finally, the sensitivity of this setup paves the way to study further $^{22}$Ne($α$,$γ$)$^{26}$Mg resonances at higher energy.