Charge and Nuclear Dynamics Induced by Deep Inner-Shell Multiphoton Ionization of CH3I Molecules by Intense X-ray Free-Electron Laser Pulses




Motomura K, Kukk E, Fukuzawa H, Wada S, Nagaya K, Ohmura S, Mondal S, Tachibanai T, Ito Y, Koga R, Sakai T, Matsunami K, Rudenko A, Nicolas C, Liu XJ, Miron C, Zhang YZ, Jiang YH, Chen JH, Anandl M, Kim DE, Tono K, Yabashi M, Yao M, Ueda K

PublisherAMER CHEMICAL SOC

2015

Journal of Physical Chemistry Letters

JOURNAL OF PHYSICAL CHEMISTRY LETTERS

J PHYS CHEM LETT

6

15

2944

2949

6

1948-7185

DOIhttps://doi.org/10.1021/acs.jpclett.5b01205



In recent years, free-electron lasers operating in the true X-ray regime have opened up access to the femtosecond-scale dynamics induced by deep inner-shell ionization. We have investigated charge creation and transfer dynamics in the context of molecular Coulomb explosion of a single molecule, exposed to sequential deep inner-shell ionization within an ultrashort (10 fs) X-ray pulse. The target molecule was CH3I, methane sensitized to X-rays by halogenization with a heavy element, iodine. Time-of-flight ion spectroscopy and coincident ion analysis was employed to investigate, via the properties of the atomic fragments, single-molecule charge states of up to +22. Experimental findings have been compared with a parametric model of simultaneous Coulomb explosion and charge transfer in the molecule. The study demonstrates that including realistic charge dynamics is imperative when molecular Coulomb explosion experiments using short-pulse facilities are performed.




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