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Dissociative ionisation of CS2 and the formation of S2+
Institution:1. Department of Chemistry, Missouri University of Science and Technology, Rolla, MO 65401, USA;2. Institut des Sciences Moleculaires d’Orsay, CNRS, Université Paris-Sud, Université Paris Saclay, F-91405 Orsay, France;3. Theoretische Chemie, Physikalisch-Chemisches Institut, Universität Heidelberg, Im Neuenheimer Feld 229, D-69120 Heidelberg, Germany;1. National Reference Centre for Bacterial Meningitis (NRCBM), National Medicines Institute, Warsaw, Poland;2. Institute Pasteur, Invasive Bacterial Infections Unit, Paris, France;3. Novartis Vaccines and Diagnostics, Siena, Italy;1. Department of Molecular Pharmacology and Experimental Therapeutics, Mayo Clinic, 13400 East Shea Blvd, Scottsdale, AZ 85259, United States;2. Metabolic Pathways and Cardiovascular Therapy Area Unit, GlaxoSmithKline Inc., Research Triangle Park, NC 27709, United States;1. Key Laboratory of Medicinal Resources and Natural Pharmaceutical Chemistry, Ministry of Education, National Engineering Laboratory for Resource Developing of Endangered Chinese Crude Drugs in Northwest of China, College of Life Sciences, Shaanxi Normal University, Xi’an 710062, Shaanxi, China;2. Department of Chemical Engineering, Queen''s University, Canada
Abstract:Photoelectron–photoion coincidence spectroscopy has been used to examine dissociative ionisation of CS2 from electronic states of CS2+ up to 27 eV, including the satellite states 3, 4, 6 and 10 whose decay has not been studied before. Branching ratios to the ions S+, CS+, S2+ and C+ have been determined throughout the range and kinetic energy release distributions have been deduced from peak shapes, allowing inferences on the states of the fragments. The choice of product channel is not strongly dependent on initial parent ion state identity. The products are formed in many different final states, but kinetic energy releases less than 3 eV are favoured, corresponding to formation of highly excited states of the products. In confirmation, optical emission has been found in coincidence with photoelectrons from formation of several inner valence states of the ions. Formation of S2+ occurs from several initial states of the parent ion and possible mechanisms are considered. It is concluded that a “quasi-statistical” model may best describe the dissociation of CS2+ from the inner valence states.
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