Observation of sequential three-body dissociation of camphor molecule -- a native frame approach
S. De, S. Mandal, Sanket Sen, Arnab Sen, R. Gopal, L. Ben Ltaief, S., Turchini, D. Catone, N. Zema, M. Coreno, R. Richter, M. Mudrich, V. Sharma,, and S. R. Krishnan

TL;DR
This study investigates the sequential three-body dissociation of camphor dications using advanced coincidence detection and native frame analysis, revealing new fragmentation channels and the dominance of sequential decay processes.
Contribution
It introduces a native frame approach to analyze camphor's three-body dissociation, identifying three new fragmentation channels and emphasizing sequential decay mechanisms.
Findings
Three new fragmentation channels identified.
Sequential decay with deferred charge separation dominates.
Fragmentation depends on final dicationic state, not initial excitation.
Abstract
The three-body dissociation dynamics of the dicationic camphor molecule (CHO) resulting from Auger decay are investigated using soft X-ray synchrotron radiation. A photoelectron-photoion-photoion coincidence (PEPIPICO) method, a combination of a velocity map imaging (VMI) spectrometer and a time-of-flight (ToF) spectrometer is employed to measure the 3D momenta of ions detected in coincidence. The ion mass spectra and the ion-ion coincidence map at photon energies of 287.9 eV (below the C 1s ionization potential) and 292.4 eV (above the C 1s ionization potential for skeletal carbon) reveal that fragmentation depends on the final dicationic state rather than the initial excitation. Using the native frame method, three new fragmentation channels are discussed; (1) CHCO + CH + CH, (2) CH + CH + CHCO, and (3) CH…
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Taxonomy
TopicsMolecular Spectroscopy and Structure · Advanced Chemical Physics Studies · Mass Spectrometry Techniques and Applications
