posted on 2024-04-12, 15:04authored byJoseph W. McManus, Felix Allum, Josh Featherstone, Chow-Shing Lam, Mark Brouard
We introduce projected-momentum
covariance mapping, an
extension
of recoil-frame covariance mapping for 2D ion imaging studies. By
considering the two-dimensional projection of the ion momenta as recorded
by the detector, one opens the door to a complex suite of analysis
tools adapted from three-dimensional momentum imaging studies. This
includes the use of different frames of reference to unravel the dynamics
of fragmentation and the application of fragment momentum constraints
to isolate specific fragmentation channels. The technique is demonstrated
on data from a two-dimensional ion imaging study of the Coulomb explosion
of the cis and trans isomers of
1,2-dichloroethene, following strong-field ionization by an intense
near-infrared femtosecond laser pulse. Classical simulations are used
to guide the interpretation of projected-momentum covariance maps.
The results offer a detailed insight into the distinct Coulomb explosion
dynamics for this pair of isomers and lay the groundwork for future
time-resolved studies of photoisomerization dynamics in this molecular
system.