A molecular clock for autoionization decay

Abstract

The ultrafast decay of highly excited electronic states is resolved with a molecular clock technique, using the vibrational motion associated to the ionic bound states as a time-reference. We demonstrate the validity of the method in the context of autoionization of the hydrogen molecule, where nearly exact full dimensional ab-initio calculations are available. The vibrationally resolved photoionization spectrum provides a time–energy mapping of the autoionization process into the bound states that is used to fully reconstruct the decay in time. A resolution of a fraction of the vibrational period is achieved. Since no assumptions are made on the underlying coupled electron–nuclear dynamics, the reconstruction procedure can be applied to describe the general problem of the decay of highly excited states in other molecular targets.

Description
Keywords
attosecond dynamics, autoionization, coupled electronic-nuclear dynamics, molecular clock
Citation
Medišauskas, L., Bello, R. Y., Palacios, A., González-Castrillo, A., Morales, F., Plimak, L., et al. (2017). A molecular clock for autoionization decay. 50(14). https://doi.org//10.1088/1361-6455/aa7215
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License
CC BY 3.0 Unported