Observation of an isomerizing double-well quantum system in the condensed phase

Molecular isomerization fundamentally involves quantum states bound within a potential energy function with multiple minima. For isolated gas-phase molecules, eigenstates well above the isomerization saddle points have been characterized. However, to observe the quantum nature of isomerization, syst...

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Veröffentlicht in:Science (American Association for the Advancement of Science) 2020-01, Vol.367 (6474), p.175-178
Hauptverfasser: Lau, Jascha A, Choudhury, Arnab, Li, Chen, Schwarzer, Dirk, Verma, Varun B, Wodtke, Alec M
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Sprache:eng
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Zusammenfassung:Molecular isomerization fundamentally involves quantum states bound within a potential energy function with multiple minima. For isolated gas-phase molecules, eigenstates well above the isomerization saddle points have been characterized. However, to observe the quantum nature of isomerization, systems in which transitions between the eigenstates occur-such as condensed-phase systems-must be studied. Efforts to resolve quantum states with spectroscopic tools are typically unsuccessful for such systems. An exception is CO adsorbed on NaCl(100), which is bound with the well-known OC-Na structure. We observe an unexpected upside-down isomer (CO-Na ) produced by infrared laser excitation and obtain well-resolved infrared fluorescence spectra from highly energetic vibrational states of both orientational isomers. This distinctive condensed-phase system is ideally suited to spectroscopic investigations of the quantum nature of isomerization.
ISSN:0036-8075
1095-9203
DOI:10.1126/science.aaz3407