Formation of magnesium clusters in superfluid helium nanodroplets.

IF 3.1 2区 化学 Q3 CHEMISTRY, PHYSICAL Journal of Chemical Physics Pub Date : 2025-03-07 DOI:10.1063/5.0250871
Rico Mayro P Tanyag, Deepak Verma, Andrey F Vilesov
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Abstract

Magnesium atoms in liquid helium have been hypothesized to form a metastable foam structure, in which a layer of helium atoms surrounds each magnesium atom, inhibiting their coalescence into a compact cluster. This conjecture is based on the weak interaction between the magnesium atoms themselves and with the helium atoms and was used to explain observations in femtosecond two-photon ionization experiments by different groups. However, this theory is incongruent with previous infrared spectroscopic observations, indicating the formation of tightly bound clusters when different atoms and molecules combine inside liquid helium. In this paper, we report the spectra (from 210 to 2210 nm) of magnesium-doped superfluid helium nanodroplets at different averaged droplet sizes and number of dopants. The measured spectra in this study are consistent with the formation of compact magnesium clusters rather than the metastable foam structure.

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超流体氦纳米液滴中镁簇的形成。
液态氦中的镁原子被假设形成亚稳态泡沫结构,其中每一个镁原子周围都有一层氦原子,抑制了镁原子聚集成致密的团簇。这一猜想是基于镁原子本身和氦原子之间的弱相互作用,并被用来解释不同小组在飞秒双光子电离实验中的观察结果。然而,这一理论与之前的红外光谱观测不一致,表明当不同的原子和分子在液氦内部结合时形成紧密结合的团簇。本文报道了镁掺杂超流氦纳米液滴在不同平均液滴尺寸和掺杂量下的光谱(210 ~ 2210 nm)。本研究测量的光谱与致密镁团簇的形成相一致,而不是亚稳泡沫结构。
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来源期刊
Journal of Chemical Physics
Journal of Chemical Physics 物理-物理:原子、分子和化学物理
CiteScore
7.40
自引率
15.90%
发文量
1615
审稿时长
2 months
期刊介绍: The Journal of Chemical Physics publishes quantitative and rigorous science of long-lasting value in methods and applications of chemical physics. The Journal also publishes brief Communications of significant new findings, Perspectives on the latest advances in the field, and Special Topic issues. The Journal focuses on innovative research in experimental and theoretical areas of chemical physics, including spectroscopy, dynamics, kinetics, statistical mechanics, and quantum mechanics. In addition, topical areas such as polymers, soft matter, materials, surfaces/interfaces, and systems of biological relevance are of increasing importance. Topical coverage includes: Theoretical Methods and Algorithms Advanced Experimental Techniques Atoms, Molecules, and Clusters Liquids, Glasses, and Crystals Surfaces, Interfaces, and Materials Polymers and Soft Matter Biological Molecules and Networks.
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