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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Predictions of laser-cooling temperatures for multilevel atoms in three-dimensional polarization-gradient fields
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Predictions of laser-cooling temperatures for multilevel atoms in three-dimensional polarization-gradient fields

机译:三维极化梯度场中多能级原子的激光冷却温度预测

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摘要

We analyze the dynamics of atom-laser interactions for atoms having multiple, closely spaced, excited-state hyperfine manifolds. The system is treated fully quantum mechanically, including the atom's center-of-mass degree of freedom, and motion is described in a polarization gradient field created by a three-dimensional laser configuration. We develop the master equation describing this system, and then specialize it to the low-intensity limit by adiabatically eliminating the excited states. We show how this master equation can be simulated using the Monte Carlo wave function technique, and we provide details on the implementation of this procedure. Monte Carlo calculations of steady state atomic momentum distributions for two fermionic alkaline earth isotopes, Mg-25 and Sr-87, interacting with a three-dimensional lin-perpendicular to-lin laser configuration are presented, providing estimates of experimentally achievable laser-cooling temperatures.
机译:我们分析了具有多个紧密间隔的激发态超精细流形的原子与原子激光相互作用的动力学。对系统进行了完全的量子力学处理,包括原子的质心自由度,并且在由三维激光配置产生的偏振梯度场中描述了运动。我们开发了描述该系统的主方程,然后通过绝热消除激发态将其专门化为低强度极限。我们展示了如何使用蒙特卡罗波函数技术来模拟该主方程,并提供了有关此程序实施的详细信息。提出了两种Fermionic碱土同位素Mg-25和Sr-87与三维lin垂直于to-lin激光配置相互作用的稳态原子动量分布的蒙特卡罗计算,提供了实验上可达到的激光冷却温度的估计值。

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