Wang Zhiyuan, Ma Zhiyu, Wei Wenzhe, Chang Jialu, Zhang Jingxuan, Wu Qiyue, Yuan Wenhao, Deng Ke, Lu Zehuang, Zhang Jie
MOE Key Laboratory of Fundamental Physical Quantities Measurement and Hubei Key Laboratory of Gravitation and Quantum Physics, PGMF and School of Physics, Huazhong University of Science and Technology, Wuhan 430074, People's Republic of China.
Rev Sci Instrum. 2024 May 1;95(5). doi: 10.1063/5.0204016.
We report on the development and performance evaluation of an ultra-stable laser for an 27Al+ optical clock. After a series of noise suppressions, especially the vibrational and temperature fluctuation noise, the 30 cm long cavity stabilized laser obtains a frequency instability of 1.3 × 10-16 @1 s. This result is predicted by noise summation and confirmed by the three-cornered hat method. The 27Al+ optical clock transition is also used to characterize the laser frequency noise, and consistent results are yielded. This is the first reported instance of using single ion optical clocks to measure the frequency noise of ultra-stable lasers, as far as we know. With the implementation of the ultra-stable clock laser, an ultra-narrow linewidth clock transition of 2.8 Hz is obtained.
我们报告了一种用于27Al+光学原子钟的超稳激光器的研制及性能评估。经过一系列噪声抑制,特别是振动和温度波动噪声抑制后,这种30厘米长的腔稳激光器在1秒时的频率不稳定度达到1.3×10-16 。该结果通过噪声求和预测,并经三角帽法证实。27Al+光学原子钟跃迁也用于表征激光频率噪声,得到了一致的结果。据我们所知,这是首次报道使用单离子光学原子钟测量超稳激光器的频率噪声实例。随着超稳时钟激光器的实现,获得了2.8赫兹的超窄线宽时钟跃迁。