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Magnetic trapping of calcium monohydride molecules at millikelvin temperatures

机译:毫摩尔温度下一氢氢化钙分子的磁阱

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Recent advances in the magnetic trapping and evaporative cooling of atoms to nanokelvin temperatures have opened important areas of research, such as Bose-Einstein condensation and ultracold atomic collisions. Similarly, the ability to trap and cool molecules should facilitate the study of ultracold molecular physics and collisions; improvements in molecular spectroscopy could be anticipated. Also, ultracold molecules could aid the search for electric dipole moments of elementary particles. But although laser cooling (in the case of alkali metals) and cryogenic surface thermalization (in the case of hydrogen) are currently used to cool some atoms sufficiently to permit their loading into magnetic traps, such techniques are not applicable to molecules, because of the latter's complex internal energy-level structure. (Indeed, most atoms have resisted trapping by these techniques.) We have reported a more general loading technique based on elastic collisions with a cold buffer gas, and have used it to trap atomic chromium and europium. Here we apply this technique to magnetically trap a molecular species—calcium monohydride (CaH). We use Zeeman spectroscopy to determine the number of trapped molecules and their temperature, and set upper bounds on the cross-sectional areas of collisional relaxation processes. The technique should be applicable to many paramagnetic molecules and atoms.
机译:原子的磁阱俘获和蒸发冷却至纳米开尔文温度的最新进展打开了重要的研究领域,例如玻色-爱因斯坦凝聚和超冷原子碰撞。同样,捕获和冷却分子的能力应有助于研究超冷分子物理学和碰撞。可以预期分子光谱学会有所改善。同样,超冷分子可以帮助寻找基本粒子的电偶极矩。但是,尽管目前已使用激光冷却(对于碱金属而言)和低温表面热化(对于氢而言)来冷却一些原子,以使其足以装载到磁阱中,但由于存在原子能,这种技术不适用于分子。后者复杂的内部能级结构。 (事实上​​,大多数原子都通过这些技术阻止了捕获。)我们已经报告了一种基于与冷缓冲气体的弹性碰撞的更通用的加载技术,并已使用它捕获了原子铬和euro。在这里,我们将这种技术应用于磁性捕获分子物质一氢化钙(CaH)。我们使用塞曼光谱法确定被困分子的数量及其温度,并在碰撞弛豫过程的横截面上设置上限。该技术应适用于许多顺磁性分子和原子。

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