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Robust Ramsey sequences with Raman adiabatic rapid passage

机译:具有拉曼绝热快速通道的鲁棒Ramsey序列

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摘要

We present a method for robust timekeeping in which alkali-metal atoms are interrogated in a Ramsey sequence based on stimulated Raman transitions with optical photons. To suppress systematic effects introduced by differential ac Stark shifts and optical intensity gradients, we employ atom optics derived from Raman adiabatic rapid passage (ARP). Raman ARP drives coherent transfer between the alkali-metal hyperfine ground states via a sweep of the Raman detuning through the two-photon resonance. Our experimental implementation of Raman ARP reduced the phase sensitivity of Ramsey sequences to Stark shifts in [superscript 133]Cs atoms by about two orders of magnitude, relative to fixed-frequency Raman transitions. This technique also preserved Ramsey fringe contrast for cloud displacements reaching the 1/e[superscript 2] intensity radius of the laser beam. In a magnetically unshielded apparatus, second-order Zeeman shifts limited the fractional frequency uncertainty to ~3.5 × 10[superscript −12] after about 2500 s of averaging.
机译:我们提出了一种健壮的计时方法,其中碱金属原子在拉姆西序列中以光子与受激拉曼跃迁为基础被询问。为了抑制由差分ac斯塔克频移和光学强度梯度引起的系统效应,我们采用了源自拉曼绝热快速通道(ARP)的原子光学。拉曼ARP通过扫掠双光子共振引起的失谐来驱动碱金属超精细基态之间的相干传递。相对于固定频率的拉曼跃迁,我们的拉曼ARP实验实现将Ramsey序列对[上标133] Cs原子的Stark位移的相位敏感性降低了大约两个数量级。对于云位移达到激光束的1 / e [上标2]强度半径的情况,该技术还保留了拉姆西条纹对比度。在无磁屏蔽的设备中,平均约2500 s后,二阶塞曼位移将分数频率不确定度限制为〜3.5×10 [上标-12]。

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