论文标题

$^{15} $ O中激发状态的终身测量

Lifetime measurements of excited states in $^{15}$O

论文作者

Frentz, B., Aprahamian, A., Clark, A. M., Dulal, C., Enright, J. D., deBoer, R. J., Görres, J., Henderson, S. L., Howard, K. B., Kelmar, R., Lee, K., Morales, L., Moylan, S., Raman, Z., Tan, W., Weghorn, L. E., Wiescher, M.

论文摘要

CNO循环是恒星中的主要能源,它比我们的太阳更大,它定义了能量产生和导致巨大恒星寿命的周期时间,它是确定球形簇时代的重要工具。 CNO反应链中最大的不确定性之一来自$^{14} $ n $(p,γ)^{15} $ o反应率的不确定性。这种不确定性主要源于$^{15} $ o在$ e_ {x} $ = 6792 kev中的子阈值状态的不确定性。以前对该州一生的测量值显着差异。在这里,我们报告了该状态的新终生测量,以及$^{15} $ o at $ e_ {x} $ = 5181 kev和$ e_ {x} $ = 6172 kev,通过$^{14} $ n} $ n $(p,γ) $ e_ {p} = 1570 $ kev。使用多普勒换档方法(DSAM)确定了使用三个单独的氮植物靶标的MO,TA和W衬板的靶标。我们从三个测量值的加权平均值中获得了寿命,从而使我们可以考虑衬板之间的系统差异。对于6792 KEV状态,我们获得了$τ= 0.6 \ pm 0.4 $ fs。为了提供我们方法的交叉验证,我们在5181 KEV和6172 KEV的已知寿命为$τ= 7.5 \ pm 3.0 $和$τ= 0.7 \ pm 0.5 $ 0.5 $ fs,这与先前的测量非常吻合。

The CNO cycle is the main energy source in stars more massive than our sun, it defines the energy production and the cycle time that lead to the lifetime of massive stars, and it is an important tool for the determination of the age of globular clusters. One of the largest uncertainties in the CNO chain of reactions comes from the uncertainty in the $^{14}$N$(p,γ)^{15}$O reaction rate. This uncertainty arises predominantly from the uncertainty in the lifetime of the sub-threshold state in $^{15}$O at $E_{x}$ = 6792 keV. Previous measurements of this state's lifetime are significantly discrepant. Here, we report on a new lifetime measurement of this state, as well as the excited states in $^{15}$O at $E_{x}$ = 5181 keV and $E_{x}$ = 6172 keV, via the $^{14}$N$(p,γ)^{15}$O reaction at proton energies of $E_{p} = 1020$ keV and $E_{p} = 1570$ keV. The lifetimes have been determined with the Doppler-Shift Attenuation Method (DSAM) with three separate, nitrogen-implanted targets with Mo, Ta, and W backing. We obtained lifetimes from the weighted average of the three measurements, allowing us to account for systematic differences between the backing materials. For the 6792 keV state, we obtained a $τ= 0.6 \pm 0.4$ fs. To provide cross-validation of our method, we measured the known lifetimes of the states at 5181 keV and 6172 keV to be $τ= 7.5 \pm 3.0$ and $τ= 0.7 \pm 0.5$ fs, respectively, which are in good agreement with previous measurements.

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