| Literature DB >> 28688450 |
Kasra Amini1, Rebecca Boll2, Alexandra Lauer1, Michael Burt1, Jason W L Lee1, Lauge Christensen3, Felix Brauβe4, Terence Mullins5, Evgeny Savelyev2, Utuq Ablikim6, Nora Berrah7, Cédric Bomme2, Stefan Düsterer2, Benjamin Erk2, Hauke Höppner2, Per Johnsson8, Thomas Kierspel5, Faruk Krecinic4, Jochen Küpper5, Maria Müller9, Erland Müller2, Harald Redlin2, Arnaud Rouzée4, Nora Schirmel2, Jan Thøgersen3, Simone Techert2, Sven Toleikis2, Rolf Treusch2, Sebastian Trippel5, Anatoli Ulmer9, Joss Wiese5, Claire Vallance1, Artem Rudenko6, Henrik Stapelfeldt3, Mark Brouard1, Daniel Rolles2.
Abstract
Laser-induced adiabatic alignment and mixed-field orientation of 2,6-difluoroiodobenzene (C6H3F2I) molecules are probed by Coulomb explosion imaging following either near-infrared strong-field ionization or extreme-ultraviolet multi-photon inner-shell ionization using free-electron laser pulses. The resulting photoelectrons and fragment ions are captured by a double-sided velocity map imaging spectrometer and projected onto two position-sensitive detectors. The ion side of the spectrometer is equipped with a pixel imaging mass spectrometry camera, a time-stamping pixelated detector that can record the hit positions and arrival times of up to four ions per pixel per acquisition cycle. Thus, the time-of-flight trace and ion momentum distributions for all fragments can be recorded simultaneously. We show that we can obtain a high degree of one-and three-dimensional alignment and mixed-field orientation and compare the Coulomb explosion process induced at both wavelengths.Entities:
Year: 2017 PMID: 28688450 DOI: 10.1063/1.4982220
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488