二阴离子锡团簇的延迟光裂变

IF 1.5 4区 物理与天体物理 Q3 OPTICS The European Physical Journal D Pub Date : 2025-02-20 DOI:10.1140/epjd/s10053-025-00965-4
Alexander Jankowski, Paul Fischer, Moritz Grunwald-Delitz, Lutz Schweikhard
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引用次数: 0

摘要

存储在Penning阱中的di阴离子锡团\(\textrm{Sn}_{34}^{2-}\)被光子能量范围为2.0 ~ \(4.7\,\textrm{eV}\)的纳秒激光脉冲激发,导致延迟衰减。时间分辨测量在激光照射和碎片分析之间从几十微秒到一秒不等的不同延迟,揭示了几个单电荷解离产物的匹配指数外观常数。这表明,dianion经过裂变形成竞争对\(\textrm{Sn}_{10}^{-}\) + \(\textrm{Sn}_{24}^{-}\)和\(\textrm{Sn}_{15}^{-}\) + \(\textrm{Sn}_{19}^{-}\)。此外,高光子能量的衰减常数是低能量的两倍,这表明在低能量处观察到的衰减是由双光子激发引起的。二阴离子锡团簇的延迟光衰表现出分裂成两个单电荷产物团簇的竞争解离途径。进一步研究了顺序衰减过程。
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Delayed photofission of dianionic tin clusters

Dianionic tin clusters \(\textrm{Sn}_{34}^{2-}\) stored in a Penning trap are excited by nanosecond laser pulses with photon energies ranging from 2.0 to \(4.7\,\textrm{eV}\), resulting in delayed decays. Time-resolved measurements with varying delays between laser irradiation and fragment analysis from a few ten microseconds to a second reveal matching exponential appearance constants of several singly charged dissociation products. This indicates that the dianions undergo fission into competing pairs of \(\textrm{Sn}_{10}^{-}\) + \(\textrm{Sn}_{24}^{-}\) and \(\textrm{Sn}_{15}^{-}\) + \(\textrm{Sn}_{19}^{-}\). Furthermore, matching decay constants for high photon energies of twice the low-energy values indicate that the decay observed at the low energies results from two-photon excitation.The delayed photodecay of dianionic tin clusters shows competing dissociation pathways by fission into two singly charged product clusters. Further sequential decay processes are investigated.

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来源期刊
The European Physical Journal D
The European Physical Journal D 物理-物理:原子、分子和化学物理
CiteScore
3.10
自引率
11.10%
发文量
213
审稿时长
3 months
期刊介绍: The European Physical Journal D (EPJ D) presents new and original research results in: Atomic Physics; Molecular Physics and Chemical Physics; Atomic and Molecular Collisions; Clusters and Nanostructures; Plasma Physics; Laser Cooling and Quantum Gas; Nonlinear Dynamics; Optical Physics; Quantum Optics and Quantum Information; Ultraintense and Ultrashort Laser Fields. The range of topics covered in these areas is extensive, from Molecular Interaction and Reactivity to Spectroscopy and Thermodynamics of Clusters, from Atomic Optics to Bose-Einstein Condensation to Femtochemistry.
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