Vogels Sjoerd N, Gao Zhi, van de Meerakker Sebastiaan Yt
Radboud University, Institute for Molecules and Materials, Heijendaalseweg 135, AJ Nijmegen, 6525 Netherlands.
EPJ Tech Instrum. 2015;2(1):12. doi: 10.1140/epjti/s40485-015-0021-y. Epub 2015 Aug 6.
With the Stark deceleration technique, packets of molecules with a tunable velocity, a narrow velocity spread, and a high state purity can be produced. These tamed molecular beams find applications in high resolution spectroscopy, cold molecule trapping, and controlled scattering experiments. The quality and purity of the packets of molecules emerging from the decelerator critically depend on the specifications of the decelerator, but also on the characteristics of the molecular beam pulse with which the decelerator is loaded. We consider three frequently used molecular beam sources, and discuss their suitability for molecular beam deceleration experiments, in particular with the application in crossed beam scattering in mind. The performance of two valves in particular, the Nijmegen Pulsed Valve and the Jordan Valve, is illustrated by decelerating ND molecules in a 2.6 meter-long Stark decelerator. We describe a protocol to characterize the valve, and to optimally load the pulse of molecules into the decelerator. We characterize the valves regarding opening time duration, optimal valve-to-skimmer distance, mean velocity, velocity spread, state purity, and relative intensity.
利用斯塔克减速技术,可以产生具有可调速度、窄速度分布和高态纯度的分子束团。这些经过“驯服”的分子束在高分辨率光谱学、冷分子俘获以及可控散射实验中都有应用。从减速器中出射的分子束团的质量和纯度,不仅关键取决于减速器的规格,还取决于加载到减速器的分子束脉冲的特性。我们考虑了三种常用的分子束源,并讨论了它们在分子束减速实验中的适用性,特别是考虑到在交叉束散射中的应用。通过在一台2.6米长的斯塔克减速器中减速ND分子,特别展示了两种阀门——奈梅亨脉冲阀和乔丹阀的性能。我们描述了一种表征阀门以及将分子脉冲最佳地加载到减速器中的方案。我们从开启持续时间、阀门到准直器的最佳距离、平均速度、速度分布、态纯度和相对强度等方面对阀门进行了表征。