论文标题
研究被困yb $^+$ - $^6 $ li的超低混合物的实验设置
Experimental setup for studying an ultracold mixture of trapped Yb$^+$-$^6$Li
论文作者
论文摘要
我们描述并表征了一种实验设备,该设备已用于研究超声锂原子与Ytterbium离子之间的相互作用。描述了Li原子的超低云以及随后的运输,并与被困在保罗陷阱中的YB $^+$离子重叠。我们展示了如何通过激光光谱法获得离子与原子相互作用后的动能。通过在没有原子的情况下分析离子的动力学,我们得出结论,由于电场噪声而导致的背景加热限制了可达到的缓冲气体冷却温度。我们怀疑通过降低降噪和增加LI气体的密度可以缓解这种效果,以提高其冷却能力。保罗陷阱的缺陷导致了所谓的多余微型动力,这对缓冲气体冷却构成了另一个限制。我们详细描述了如何测量和随后最大程度地减少设置中的过量微功能。我们测量过量微功能对缓冲气体冷却后可达到的离子温度的影响,并将其与分子动力学模拟进行比较,这些模拟很好地描述了观察到的数据。
We describe and characterize an experimental apparatus that has been used to study interactions between ultracold lithium atoms and ytterbium ions. The preparation of ultracold clouds of Li atoms is described as well as their subsequent transport and overlap with Yb$^+$ ions trapped in a Paul trap. We show how the kinetic energy of the ion after interacting with the atoms can be obtained by laser spectroscopy. From analyzing the dynamics of the ion in the absence of atoms, we conclude that background heating, due to electric field noise, limits attainable buffer gas cooling temperatures. We suspect that this effect can be mitigated by noise reduction and by increasing the density of the Li gas, in order to improve its cooling power. Imperfections in the Paul trap lead to so-called excess micromotion, which poses another limitation to the buffer gas cooling. We describe in detail how we measure and subsequently minimize excess micromotion in our setup. We measure the effect of excess micromotion on attainable ion temperatures after buffer gas cooling and compare this to molecular dynamics simulations which describe the observed data very well.