论文标题
Muonium原子高精细结构的拉式振荡光谱
Rabi-Oscillation Spectroscopy of the Hyperfine Structure of Muonium Atoms
论文作者
论文摘要
作为确定谐振频率的新方法,已经开发了rabi-oscillation光谱。与绘制共振曲线的常规光谱法相反,rabi-scillation光谱符合拉皮振荡的时间演变。通过选择优化的频率,可以表明精度是带有频率扫描的常规光谱的两倍。此外,可以以统一的方式处理在不同条件下的数据,从而可以对由加速器(如Muons)(如Muons)产生的有限数量的短寿命颗粒组成的系统进行更有效的测量。我们已经开发了一种拟合函数,该函数考虑了蒙克的空间分布和微波强度的空间分布,以将新方法应用于零场的地面蒙马元素超细胞结构测量。这应用于实际测量数据,共振频率在各种条件下确定。我们的分析结果给出了$ν_ {\ rm hfs} = 4 \ 463 \ 301.61 \ pm 0.71 \ {\ rm khz} $,这是零字段条件下的世界最高精度。
As a new method to determine the resonance frequency, Rabi-oscillation spectroscopy has been developed. In contrast to the conventional spectroscopy which draws the resonance curve, Rabi-oscillation spectroscopy fits the time evolution of the Rabi oscillation. By selecting the optimized frequency, it is shown that the precision is twice as good as the conventional spectroscopy with a frequency sweep. Furthermore, the data under different conditions can be treated in a unified manner, allowing more efficient measurements for systems consisting of a limited number of short-lived particles produced by accelerators such as muons. We have developed a fitting function that takes into account the spatial distribution of muonium and the spatial distribution of the microwave intensity to apply the new method to ground-state muonium hyperfine structure measurements at zero field. This was applied to the actual measurement data and the resonance frequencies were determined under various conditions. The result of our analysis gives $ν_{\rm HFS}=4\ 463\ 301.61 \pm 0.71\ {\rm kHz}$, which is the world's highest precision under zero field conditions.