arXiv · 1901.08937
Time-resolved inner-shell photoelectron spectroscopy: from a bound molecule to an isolated atom
Abstract
Due to its element- and site-specificity, inner-shell photoelectron spectroscopy is a widely used technique to probe the chemical structure of matter. Here we show that time-resolved inner-shell photoelectron spectroscopy can be employed to observe ultrafast chemical reactions and the electronic response to the nuclear motion with high sensitivity. The ultraviolet dissociation of iodomethane (CH$_3$I) is investigated by ionization above the iodine 4d edge, using time-resolved inner-shell photoelectron and photoion spectroscopy. The dynamics observed in the photoelectron spectra appear earlier and are faster than those seen in the iodine fragments. The experimental results are interpreted using crystal field and spin-orbit configuration interaction calculations, and demonstrate that time-resolved inner-shell photoelectron spectroscopy is a powerful tool to directly track ultrafast structural and electronic transformations in gas-phase molecules.
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Felix Brauße, Gildas Goldsztejn, Kasra Amini, Rebecca Boll, Sadia Bari, Cédric Bomme, Mark Brouard, Michael Burt, Barbara Cunha de Miranda, Stefan Düsterer, Benjamin Erk, Marie Géléoc, Romain Geneaux, Alexander S. Gentleman, Renaud Guillemin, Iyas Ismail, Per Johnsson, Loïc Journel, Thomas Kierspel, Hansjochen Köckert, Jochen Küpper, Pascal Lablanquie, Jan Lahl, Jason W. L. Lee, Stuart R. Mackenzie, Sylvain Maclot, Bastian Manschwetus, Andrey S. Mereshchenko, Terence Mullins, Pavel K. Olshin, Jérôme Palaudoux, Serguei Patchkovskii, Francis Penent, Maria Novella Piancastelli, Dimitrios Rompotis, Thierry Ruchon, Artem Rudenko, Evgeny Savelyev, Nora Schirmel, Simone Techert, Oksana Travnikova, Sebastian Trippel, Jonathan G. Underwood, Claire Vallance, Joss Wiese, Marc Simon, David M. P. Holland, Tatiana Marchenko, Arnaud Rouzée, Daniel Rolles. 2019-01-25. Time-resolved inner-shell photoelectron spectroscopy: from a bound molecule to an isolated atom. https://doi.org/10.1103/physreva.97.043429
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