Department of Physics and Astronomy, Aarhus University, DK-8000 Aarhus C, Denmark.
Phys Rev Lett. 2018 Jun 22;120(25):253601. doi: 10.1103/PhysRevLett.120.253601.
We demonstrate the use of a femtosecond frequency comb to coherently drive stimulated Raman transitions between terahertz-spaced atomic energy levels. More specifically, we address the 3d ^{2}D_{3/2} and 3d ^{2}D_{5/2} fine structure levels of a single trapped ^{40}Ca^{+} ion and spectroscopically resolve the transition frequency to be ν_{D}=1,819,599,021,534±8 Hz. The achieved accuracy is nearly a factor of five better than the previous best Raman spectroscopy, and is currently limited by the stability of our atomic clock reference. Furthermore, the population dynamics of frequency-comb-driven Raman transitions can be fully predicted from the spectral properties of the frequency comb, and Rabi oscillations with a contrast of 99.3(6)% and millisecond coherence time have been achieved. Importantly, the technique can be easily generalized to transitions in the sub-kHz to tens of THz range and should be applicable for driving, e.g., spin-resolved rovibrational transitions in molecules and hyperfine transitions in highly charged ions.
我们展示了飞秒频率梳在相干驱动太赫兹间隔的原子能级间受激拉曼跃迁中的应用。更具体地说,我们解决了单个囚禁的 ^{40}Ca^{+}离子的 3d^{2}D_{3/2}和 3d^{2}D_{5/2}精细结构能级,并通过光谱学方法将跃迁频率分辨为 ν_{D}=1,819,599,021,534±8 Hz。所达到的精度比以前最好的拉曼光谱学提高了近一个数量级,目前受到我们原子钟参考稳定性的限制。此外,通过频率梳的光谱特性可以完全预测频率梳驱动的拉曼跃迁的动力学,并且已经实现了对比度为 99.3(6)%和毫秒相干时间的拉比振荡。重要的是,该技术可以很容易地推广到亚赫兹到数十太赫兹范围内的跃迁,并应适用于驱动分子中的自旋分辨转动跃迁和高电荷离子中的超精细跃迁等。