Different Photodissociation Mechanisms in Fe(CO)5 and Cr(CO)6 Evidenced with Femtosecond Valence Photoelectron Spectroscopy and Excited-State Molecular Dynamics Simulations

Measured and calculated time-resolved photoelectron spectra and excited-state molecular dynamics simulations of photoexcited gas-phase molecules Fe­(CO)5 and Cr­(CO)6 are presented. Samples were excited with 266 nm pump pulses and probed with 23 eV photons from a femtosecond high-order harmonic gene...

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Veröffentlicht in:The journal of physical chemistry letters 2024-11, Vol.15 (47), p.11830-11838
Hauptverfasser: Schröder, Henning, Coates, Michael R., Jay, Raphael M., Banerjee, Ambar, Sorgenfrei, Nomi L.A.N., Weniger, Christian, Mitzner, Rolf, Föhlisch, Alexander, Odelius, Michael, Wernet, Philippe
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Sprache:eng
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Zusammenfassung:Measured and calculated time-resolved photoelectron spectra and excited-state molecular dynamics simulations of photoexcited gas-phase molecules Fe­(CO)5 and Cr­(CO)6 are presented. Samples were excited with 266 nm pump pulses and probed with 23 eV photons from a femtosecond high-order harmonic generation source. Photoelectron intensities are seen to blue-shift as a function of time from binding energies characteristic of bound electronic excited states via dissociated-state energies toward the energies of the dissociated species for both Fe­(CO)5 and Cr­(CO)6, but differences are apparent. The excited-state and dissociation dynamics are found to be faster in Cr­(CO)6 because the repopulation from bound excited to dissociative excited states is faster. This may be due to stronger coupling between bound and dissociative states in Cr­(CO)6, a notion supported by the observation that the manifolds of bound and dissociative states overlap in a narrow energy range in this system.
ISSN:1948-7185
1948-7185
DOI:10.1021/acs.jpclett.4c02025