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Influence of clustering and molecular orbital shapes on the ionization enhancement in ammonia

机译:团簇和分子轨道形状对氨电离增强的影响

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The Coulomb explosion of clusters is known to be an efficient source for producing multiply charged ions through an enhanced ionization process. However, the factors responsible for obtaining these high charge states have not been previously explored in detail and remain poorly understood. By comparing intensity-resolved visible laser excitation experiments with semi-classical theory over a range spanning both multiphoton and tunneling ionization regimes, we reveal the mechanism in which extreme ionization proceeds. Under laser conditions that can only singly ionize individual molecules, ammonia clusters generate ions depleted of all valence electrons. The geometries of the molecular orbitals are revealed to be important in driving the ionization, and can be entirely emptied at the energy requirement for removal of the first electron in the orbital. The results are in accord with non-sequential ionization arising from electrons tunneling from three separate molecular orbitals aided through the ionization ignition mechanism.
机译:已知簇的库仑爆炸是通过增强的电离过程产生多电荷离子的有效来源。但是,负责获得这些高电荷状态的因素以前尚未进行过详细探讨,并且了解甚少。通过在跨多光子和隧穿电离体系的范围内,将强度分辨的可见激光激发实验与半经典理论进行比较,我们揭示了极端电离进行的机理。在只能单个离子化单个分子的激光条件下,氨团簇产生的离子会耗尽所有价电子。分子轨道的几何形状显示出对驱动电离作用很重要,并且可以完全去除清空轨道中第一个电子所需的能量。结果与非顺序电离是相符的,该非顺序电离是由通过电离点火机制辅助的来自三个独立分子轨道的电子隧穿引起的。

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