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Multichannel photodissociation dynamics in CS2 studied by ultrafast electron diffraction

  • Weronika O. Razmus
  • , Kyle Acheson
  • , Philip Bucksbaum
  • , Martin Centurion
  • , Elio Champenois
  • , Ian Gabalski
  • , Matthias C. Hoffman
  • , Andrew Howard
  • , Ming Fu Lin
  • , Yusong Liu
  • , Pedro Nunes
  • , Sajib Saha
  • , Xiaozhe Shen
  • , Matthew Ware
  • , Emily M. Warne
  • , Thomas Weinacht
  • , Kyle Wilkin
  • , Jie Yang
  • , Thomas J.A. Wolf
  • , Adam Kirrander
  • Russell S. Minns, Ruaridh Forbes
  • University of Southampton
  • University of Edinburgh
  • SLAC National Accelerator Laboratory
  • University of Nebraska-Lincoln
  • Stony Brook University

Research output: Contribution to journalArticlepeer-review

18 Scopus citations

Abstract

The structural dynamics of photoexcited gas-phase carbon disulfide (CS2) molecules are investigated using ultrafast electron diffraction. The dynamics were triggered by excitation of the optically bright 1B2(1Σu+) state by an ultraviolet femtosecond laser pulse centred at 200 nm. In accordance with previous studies, rapid vibrational motion facilitates a combination of internal conversion and intersystem crossing to lower-lying electronic states. Photodissociation via these electronic manifolds results in the production of CS fragments in the electronic ground state and dissociated singlet and triplet sulphur atoms. The structural dynamics are extracted from the experiment using a trajectory-fitting filtering approach, revealing the main characteristics of the singlet and triplet dissociation pathways. Finally, the effect of the time-resolution on the experimental signal is considered and an outlook to future experiments provided.

Original languageEnglish
Pages (from-to)15416-15427
Number of pages12
JournalPhysical Chemistry Chemical Physics
Volume24
Issue number25
DOIs
StatePublished - Jun 8 2022

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