论文标题
部分可观测时空混沌系统的无模型预测
Isotope enrichment in neon clusters grown in helium nanodroplets
论文作者
论文摘要
霓虹簇离子NE $ _S^+$在预取离的,质量到电荷的选定氦纳米螺旋体(HNDS)中揭示了重量的浓缩浓度,这取决于集群大小S和实验条件。对于小尺寸,富集比以前报道的裸霓虹灯簇在喷嘴膨胀中生长并随后电离。富集可追溯到用于从HND中剥离氦的碰撞细胞中霓虹原子的大量蒸发。我们得出了群集离子中$^{22} $ ne的富集与蒸气阶段中相应的耗尽因子$ f $之间的关系。因此,对于$ f $,与理论表达式相关的值是非常一致的,该理论表达与原子气体的两相平衡中的同位素分级有关。此外,从F计算出的两个同位素之间的零点能量的差异与对谐波近似中的核量子效应的理论研究非常吻合。另一个拟合参数提供了观察到的NE $ _S^+$的前体的尺寸S $ _i $的估计。该值与通过对NE $ _S^+$的增长进行建模以及从其他实验数据得出的下限和上限来估计的尺寸达到了令人满意的一致性。另一方面,在中性HND中生长的霓虹灯簇随后通过电子轰击而电离,完全没有统计学意义的同位素富集。这一发现表明,嵌入HND中的电离诱导的簇离解离解的程度要比裸露的簇小得多。
Neon cluster ions Ne$_s^+$ grown in pre-ionized, mass-to-charge selected helium nanodroplets (HNDs) reveal a strong enrichment of the heavy isotope $^{22}$Ne that depends on cluster size s and the experimental conditions. For small sizes the enrichment is much larger than previously reported for bare neon clusters grown in nozzle expansions and subsequently ionized. The enrichment is traced to the massive evaporation of neon atoms in a collision cell that is used to strip helium from the HNDs. We derive a relation between the enrichment of $^{22}$Ne in the cluster ion and its corresponding depletion factor $F$ in the vapor phase. The value thus found for $F$ is in excellent agreement with a theoretical expression that relates isotopic fractionation in two-phase equilibria of atomic gases to the Debye temperature. Furthermore, the difference in zero-point energies between the two isotopes computed from F agrees reasonably well with theoretical studies of neon cluster ions that include nuclear quantum effects in the harmonic approximation. Another fitting parameter provides an estimate for the size s$_i$ of the precursor of the observed Ne$_s^+$. The value is in satisfactory agreement with the size estimated by modeling the growth of Ne$_s^+$, and with lower and upper limits deduced from other experimental data. On the other hand, neon clusters grown in neutral HNDs that are subsequently ionized by electron bombardment exhibit no statistically significant isotope enrichment at all. The finding suggests that the extent of ionization-induced dissociation of clusters embedded in HNDs is considerably smaller than for bare clusters.