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Fission of Polyanionic Metal Clusters.
S König1, A Jankowski1, G Marx1
1Institute of Physics, Ernst-Moritz-Arndt University, 17489 Greifswald, Germany.
Physical Review Letters
|May 15, 2018
Summary
Dianionic lead clusters exhibit unique decay patterns, with fission being dominant below a specific size. This suggests a potential nonmetal-to-metal transition in these lead clusters.
Area of Science:
- Atomic and Molecular Physics
- Condensed Matter Physics
- Materials Science
Background:
- Dianionic metal clusters typically display limited decay channels.
- Lead clusters present an opportunity to study size-dependent electronic transitions.
Purpose of the Study:
- Investigate the photoexcitation decay pathways of size-selected dianionic lead clusters (Pb_{n}^{2-}).
- Determine the dominant decay processes and their dependence on cluster size.
- Identify potential signatures of electronic transitions within lead clusters.
Main Methods:
- Size-selected dianionic lead clusters (Pb_{n}^{2-}, n=34-56) were confined in a Penning trap.
- Photoexcitation was used to induce cluster decay.
- Mass spectrometry was employed to analyze fragment ions and compare with monoanionic precursors.
Main Results:
- Lead clusters displayed diverse decay channels, unlike other dianionic metal clusters.
- The fission reaction Pb_{n}^{2-}→Pb_{n-10}^{-}+Pb_{10}^{-} was the primary decay pathway for clusters with n < 48.
- This fission process diminished for larger cluster sizes, hinting at a nonmetal-to-metal transition.
Conclusions:
- The Pb_{10}^{-} and Pb_{n-10}^{-} fragment pair serves as a fingerprint for dianionic lead cluster decay.
- This observation allowed tracing dianionic clusters down to Pb_{21}^{2-}.
- The disappearance of fission decay suggests a size-induced transition from a nonmetallic to a metallic state in lead clusters.
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