Few-femtosecond photoelectron spectroscopy reveals fundamental photodynamics of the carbon-carbon double bond in ethylene
Abstract
Abstract Conjugated π -systems, often composed of carbon-carbon double bonds as key structural units, are among the most important organic chromophores and serve as prototypical systems for studying π π * excitation. Their ultrafast excited-state dynamics govern the outcomes of fundamental photochemical processes, including vision, photoisomerization, photosynthesis, and solar energy conversion. Here, we investigate the ultrafast dynamics of the simplest isolated C=C chromophore, ethylene, and its per-deuterated isotopologue using broadly tunable sub-4 femtosecond pulses in the 150-200 nm range combined with time-resolved photoelectron spectroscopy. Supported by advanced quantum dynamics calculations, our results reveal the important role of the 1 B 3 g ( σ π * ) state, which is strongly coupled through torsional motion to the optically populated 1 B 1 u ( π π * ) state. These findings establish a revised framework for understanding and controlling photochemical reaction in conjugated molecular systems.
Article Details
Authors (11)
Arnab Sen
Simon P. Neville
Martin Kretschmar
Martha Yaghoubi Jouybari
Rostyslav Danylo
José R. C. Andrade
Marc J. J. Vrakking
Albert Stolow
Department of Chemistry and Biomolecular Sciences, University of Ottawa 1 , D’Iorio Hall, Ottawa, Ontario K1N 6N5,
Tamás Nagy
Michael S. Schuurman
National Research Council Canada
Arnaud Rouzée
Max-Born-Institut, Max Born Straße 2A, Berlin 12489, Germany