论文标题

$^{87} $ rb的过渡取消和$^{85} $ rb原子在磁场设置新标准

Transition cancellations of $^{87}$Rb and $^{85}$Rb atoms in a magnetic field setting new standards

论文作者

Aleksanyan, Artur, Momier, Rodolphe, Gazazyan, Emil, Papoyan, Aram, Leroy, Claude

论文摘要

我们已经分析了磁场的磁场依赖性的磁场依赖性在超精细水平的磁性转换之间,以$σ^+$,$π$和$σ^ - $ polarized Light,$ d_1 $和$ d_1 $和$ d_2 $的$ d_2 $ of $^{87} $ rb and $^rb和$^rb and $^{85} $ rb atoms。根据过渡类型和涉及水平的量子数,哈密顿矩阵为$ 1 \ times 1 $,$ 2 \ times 2 $,$ 3 \ times 3 $或$ 4 \ times 4 $ dimension。例如,为两种同位素的$ d_1 $行的$ 2 $ dimension矩阵提供了分析表达式。给出了特征值和特征力,并确定了过渡强度作为$ b $的函数的表达式。发现某些$^{87} $ rb和$^{85} $ rb的$π$过渡完全取消了$ b $的值。对于$σ^+$或$σ^ - $ d_1 $ line的$σ^+$或$σ^ - $ $σ^ - $。对于尺寸超过$ 2 \ times 2 $的矩阵,分析公式很重,我们进行了数值计算。计算所有$ b $值取消$σ^+$,$π$和$σ^ - $ d_1 $的过渡和$ d_2 $行的$^{87} $ rb和$^{85} $ rb是计算的,精确限制了涉及物理量的精确度。我们认为,我们的建模可以作为确定磁场标准化值的工具。实现可行性及其可能的结果。我们认为,实验实现将允许提高所涉及的物理量的精度,尤其是上州原子能水平的能量。

We have analyzed the magnetic field dependences of intensities of all the optical transitions between magnetic sublevels of hyperfine levels, excited with $σ^+$, $π$ and $σ^-$ polarized light, for the $D_1$ and $D_2$ lines of $^{87}$Rb and $^{85}$Rb atoms. Depending on the type of transition and the quantum numbers of involved levels, the Hamiltonian matrices are of $1\times 1$, $2\times 2$, $3\times 3$ or $4\times 4$ dimension. As an example, analytical expressions are presented for the case of $2\times 2$ dimension matrices for $D_1$ line of both isotopes. Eigenvalues and eigenkets are given, and the expression for the transition intensity as a function of $B$ has been determined. It is found that some $π$ transitions of $^{87}$Rb and $^{85}$Rb get completely canceled for certain, extremely precise, values of $B$. No cancellation occurs for $σ^+$ or $σ^-$ transitions of $D_1$ line. For matrices with size over $2\times 2$, analytical formulas are heavy, and we have performed numerical calculations. All the $B$ values cancelling $σ^+$, $π$ and $σ^-$ transitions of $D_1$ and $D_2$ lines of $^{87}$Rb and $^{85}$Rb are calculated, with an accuracy limited by the precision of the involved physical quantities. We believe our modeling can serve as a tool for determination of standardized values of magnetic field. The experimental implementation feasibility and its possible outcome are addressed. We believe the experimental realization will allow to increase precision of the physical quantities involved, in particular the upper state atomic levels energy.

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