论文标题
激光诱导的分子阴离子的强迫蒸发冷却低于4凯文
Laser-induced forced evaporative cooling of molecular anions below 4 Kelvin
论文作者
论文摘要
冷和受控分子离子的研究对于现代物理和化学的基础研究至关重要。尤其是对冷却分子阴离子的研究,事实证明,对冷抗氧的产生,阴离子库仑晶体以及大气研究和天体化学的产生和研究是关键的结果。常用的阴离子冷却技术通过与缓冲气体的碰撞受到使用的低温冷却介质的温度的限制。在这里,我们通过激光束对阴离子束进行强制蒸发冷却,该激光束具有光子能量远远高于阴离子的光检查阈值。我们从初始温度370(12)k的初始温度下降到2.2(8)K的阴离子OH $^{ - } $集合的失控蒸发冷却。这对应于离子的相位空间密度的三个数量级,接近近乎突发的库仑耦合方案。通过完整的热力学模型(包括内在碰撞加热的作用)对实验结果进行定量分析代表了阴离子冷却动力学,而无需任何拟合参数。该技术原则上可用于冷却液氦温度以下的任何阴离子物种,提供了一种新颖的工具,可以将阴离子冷却的边界推向远低于最先进的温度状态。
The study of cold and controlled molecular ions is pivotal for fundamental research in modern physics and chemistry. Investigations into cooling molecular anions, in particular, have proven to be of key consequence for the production of cold antihydrogen, the creation, and study of anionic Coulomb crystals as well as in atmospheric research and astrochemistry. The commonly used anion cooling technique via collisions with a buffer gas is limited by the temperature of the used cryogenic cooling medium. Here, we demonstrate forced evaporative cooling of anions via a laser beam with photon energies far above the photodetachment threshold of the anion. We reach runaway evaporative cooling of an anionic OH$^{-}$ ensemble from an initial temperature of 370(12) K down to 2.2(8) K. This corresponds to three orders of magnitude increase in the ions' phase space density approaching the near-strong Coulomb coupling regime. A quantitative analysis of the experimental results, via a full thermodynamic model including the role of intrinsic collisional heating, represents the anion cooling dynamics without any fitting parameters. This technique can be used to cool, in principle, any anionic species below liquid helium temperature, providing a novel tool to push the frontiers of anion cooling to much lower than the state-of-the-art temperature regimes.