论文标题

在强烈不均匀磁场中被困离子的激光冷却

Laser Cooling of Trapped Ions in Strongly Inhomogeneous Magnetic Fields

论文作者

Karl, Richard, Yin, Yanning, Willitsch, Stefan

论文摘要

在非常低的温度下,用于研究这些物种之间的相互作用的多功能工具最近出现了同时限制中性和离子的混合陷阱。这样的陷阱依靠不同类型的外部田地的组合来限制任何一种物种,从而提出了单个陷阱之间相互作用的问题。在这里,使用基于多级速率方程的分子 - 动力学模拟,研究了理论上研究了用于将单个Ca $^+$离子捕获和激光冷却的强烈不均匀磁场的影响。不均匀的磁场将离子运动的不同成分融合在一起,并引入了依赖位置的Zeeman分裂。但是,由于离子样品沿其轨迹的不同磁场强度和方向,激光冷却仍然有效地工作。抵消两个陷阱的中心会产生线性磁场梯度,以便需要多个激光器来解决所得的Zeeman分割范围,以确保有效冷却。本研究对与混合诱捕实验的表征和优化相关的磁和射频电场中的离子冷却动力学产生了详细的见解。

Hybrid traps for the simultaneous confinement of neutrals and ions have recently emerged as versatile tools for studying interactions between these species at very low temperatures. Such traps rely on the combination of different types of external fields for the confinement of either species raising the question of interactions between the individual traps. Here, the influence of a strongly inhomogeneous magnetic field used for trapping neutrals on the trapping and laser cooling of a single Ca$^+$ ion in a radiofrequency ion trap is studied theoretically using molecular-dynamics simulations based on multilevel rate equations. The inhomogeneous magnetic field couples the different components of the ion motion and introduces position-dependent Zeeman splittings. Nonetheless, laser cooling is still found to work efficiently as the ion samples different magnetic field strengths and directions along its trajectory. Offsetting the centres of the two traps generates a linear magnetic-field gradient so that multiple lasers are required to address the resulting range of Zeeman splittings in order to ensure efficient cooling. The present study yields detailed insights into the ion cooling dynamics in combined magnetic and radiofrequency electric fields relevant for the characterisation and optimisation of hybrid trapping experiments.

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