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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Effect of a magnetic field gradient and gravitational acceleration on a time-domain grating-echo interferometer
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Effect of a magnetic field gradient and gravitational acceleration on a time-domain grating-echo interferometer

机译:磁场梯度和重力加速度对时域光栅回波干涉仪的影响

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摘要

We have observed the effects of magnetic field gradients and gravitational acceleration on grating echoes in a time-domain single state atom interferometer that uses laser cooled Rb atoms. These observations are compared to theoretical predictions based on a simplified model. The oscillatory dependence of the echo amplitude due to the magnetic field gradient is in agreement with the predicted quadratic scaling as a function of the time between excitation pulses. We also observe a linear dependence of this oscillation frequency as a function of the magnetic field gradient which is predicted by theory. In the presence of gravity, the calculations predict a quadratic dependence for the echo phase on the time between excitation pulses as well as a change in the shape of the echo envelope. We have observed both of these effects in the experiment, and we find that the change in shape is qualitatively consistent with our prediction. It is necessary to understand these effects in order to carry out high precision studies of the atomic fine-structure constant and gravitational acceleration using this interferometric technique. We also present an improved measurement of gravitational acceleration using this technique that is precise to similar to 15 ppm by exploiting the quadratic phase dependence.
机译:我们在使用激光冷却的Rb原子的时域单态原子干涉仪中观察到了磁场梯度和重力加速度对光栅回波的影响。将这些观察结果与基于简化模型的理论预测进行比较。由于磁场梯度导致的回波振幅的振荡依赖性与作为激励脉冲之间时间的函数的预测二次比例一致。我们还观察到该振荡频率与磁场梯度的函数之间存在线性关系,这是理论上预测的结果。在存在重力的情况下,计算可预测回波相位与激励脉冲之间的时间以及回波包络形状的变化之间的二次相关性。我们已经在实验中观察到了这两种影响,并且发现形状的变化在质量上与我们的预测一致。为了使用这种干涉技术对原子的精细结构常数和重力加速度进行高精度研究,有必要了解这些影响。我们还提出了一种改进的重力加速度测量方法,该技术通过利用二次相位依赖性,精确到类似于15 ppm。

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