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201Hg+ co-magnetometer for 199Hg+ trapped ion space atomic clocks

机译: 199 Hg + 捕获的离子空间原子钟的 201 Hg + 磁力仪

摘要

Local magnetic field strength in a trapped ion atomic clock is measured in real time, with high accuracy and without degrading clock performance, and the measurement is used to compensate for ambient magnetic field perturbations. First and second isotopes of an element are co-located within the linear ion trap. The first isotope has a resonant microwave transition between two hyperfine energy states, and the second isotope has a resonant Zeeman transition. Optical sources emit ultraviolet light that optically pump both isotopes. A microwave radiation source simultaneously emits microwave fields resonant with the first isotope's clock transition and the second isotope's Zeeman transition, and an optical detector measures the fluorescence from optically pumping both isotopes. The second isotope's Zeeman transition provides the measure of magnetic field strength, and the measurement is used to compensate the first isotope's clock transition or to adjust the applied C-field to reduce the effects of ambient magnetic field perturbations.
机译:捕获的离子原子钟中的局部磁场强度可以高精度,不降低时钟性能的情况进行实时测量,并且该测量值可用来补偿环境磁场的扰动。元素的第一和第二同位素共同位于线性离子阱内。第一个同位素在两个超精细能态之间具有共振的微波跃迁,第二个同位素具有共振的塞曼跃迁。光源发出紫外光,从而光学泵浦两个同位素。微波辐射源同时发出与第一个同位素的时钟跃迁和第二个同位素的塞曼跃迁共振的微波场,并且光学检测器测量光学泵浦两个同位素的荧光。第二个同位素的塞曼跃迁提供了磁场强度的度量,该测量用于补偿第一个同位素的时钟跃迁或调整施加的C场以减少环境磁场扰动的影响。

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