论文标题
取消光圈腔中的空腔长度引起的相位噪声进行相移测量和旋转挤压
Canceling the cavity length induced phase noise in an optical ring cavity for phase shift measurement and spin squeezing
论文作者
论文摘要
我们使用高铁光圈腔展示了一种新的光相移测量方法,该腔体显示出由于空腔长度波动而导致的相位噪声降低。两个激光束具有一个自由空腔光谱范围的频率差的激光束与空腔同时共振,这表明由于共同模式腔长度波动而引起的误差信号中的噪声相关性。差异误差信号显示,频率范围的腔噪声降低了30 dB的频率范围,最高为一半的空腔线宽($Δν/2 \ simeq 30 $ kHz)。分析了各种噪声源,并评估了它们对噪声的贡献。此外,我们在模拟的自旋式实验中应用了这种减少降噪相移测量方案,在该实验中,我们的相位敏感性提高了40倍,相位分辨率为0.7 mrad,这可能会消除一个重要的障碍,以免获得高度自旋平方的状态。所证明的方法是使用光环腔和两个独立的梁(一种灵活的情况)进行的首次报道的测量。该方法可以在量子系统中直接应用于非破坏性测量,例如在原子干涉仪和原子时钟中生成自旋方态。
We demonstrate a new method of light phase shift measurement using a high-finesse optical ring cavity which exhibits reduced phase noise due to cavity length fluctuations. Two laser beams with a frequency difference of one cavity free spectral range are simultaneously resonant with the cavity, demonstrating noise correlations in the error signals due to the common-mode cavity length fluctuations. The differential error signal shows a 30 dB reduction in cavity noise down to the noise floor in a frequency range up to half the cavity linewidth ($δν/2 \simeq 30$ kHz). Various noise sources are analyzed and their contributions to the noise floor are evaluated. Additionally, we apply this noise-reduced phase shift measurement scheme in a simulated spin-squeezing experiment where we have achieved a factor of 40 improvement in phase sensitivity with a phase resolution of 0.7 mrad, which may remove one important barrier against attaining highly spin-squeezed states. The demonstrated method is the first reported measurement using an optical ring cavity and two independent beams, a flexible situation. This method can find direct application to non-destructive measurements in quantum systems, such as for the generation of spin-squeezed states in atom interferometers and atomic clocks.