首页> 外文会议>2015 Joint Conference of the IEEE International Frequency Control Symposium amp; European Frequency and Time Forum >Laser stabilization on velocity dependent nonlinear dispersion of Sr atoms in an optical cavity
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Laser stabilization on velocity dependent nonlinear dispersion of Sr atoms in an optical cavity

机译:Sr原子在光腔中与速度有关的非线性色散的激光稳定化

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The development of simple and reliable high stability clock lasers is of great importance for future state-of-the-art optical clocks [1]-[5] and for future transportable optical clocks [6], [7]. Further development of clock lasers with better stability has so far been hindered by thermal noise in the reference cavity used for laser stabilization and conventional approaches for improvements may be technically challenging. It has been proposed [8]-[11] to improve the stability and reduce the complexity of state-of-the-art laser frequency stabilization by exploiting cavity QED systems consisting of atoms with a narrow optical transition coupled to a single mode of an optical cavity. The laser stabilization performance of a cavity QED system is affected by a number of system parameters such as the finite temperature of the atoms, the number of involved atoms and the laser power [12]-[14]. However, the dynamics of those elements have not yet been fully explored. Here we present a simple cavity QED system consisting of laser cooled strontium-88 atoms coupled to an optical cavity. We relate measurable quantities to the complex transmission coefficient which relates the input field to the output field. The optimal input power for stabilizing a laser to this system is experimentally determined and the optimal shot-noise-limited linewidth of the system is evaluated to 500 mHz. Furthermore, theoretical shot-noise-limited linewidths of similar cavity QED systems are evaluated for a number of different two electron systems.
机译:简单可靠的高稳定性时钟激光器的开发对于未来的最新光学时钟[1]-[5]和未来的可移动光学时钟[6],[7]至关重要。迄今为止,具有更好稳定性的时钟激光器的进一步发展受到用于激光器稳定化的参考腔中热噪声的阻碍,传统的改进方法在技术上可能具有挑战性。已经提出了[8]-[11],以通过利用由具有窄光学跃迁的原子组成的腔QED系统耦合到单模态的空腔QED系统来提高稳定性并降低最新技术的激光频率稳定化的复杂性。光学腔。腔QED系统的激光稳定性能受许多系统参数的影响,例如原子的有限温度,所涉及的原子数和激光功率[12]-[14]。但是,这些元素的动力学尚未得到充分探索。在这里,我们介绍了一个简单的腔QED系统,该系统由耦合至光学腔的激光冷却锶88原子组成。我们将可测量的量与复数传输系数相关,复数传输系数将输入场与输出场相关。通过实验确定用于稳定该系统激光器的最佳输入功率,并将系统的最佳散粒噪声限制线宽评估为500 mHz。此外,针对许多不同的两个电子系统,评估了类似腔QED系统的理论散粒噪声限制的线宽。

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