arXiv · 1806.04078
Identifying Strong-Field Effects in Indirect Photofragmentation Reactions
Abstract
Exploring molecular breakup processes induced by light-matter interactions has both fundamental and practical implications. However, it remains a challenge to elucidate the underlying reaction mechanism in the strong field regime, where the potentials of the reactant are modified dramatically. Here, we perform a theoretical analysis combined with a time-dependent wavepacket calculation to show how a strong ultrafast laser field affects the photofragment products. As an example, we examine the photochemical reaction of breaking up the molecule NaI into the neutral atoms Na and I, which due to inherent nonadiabatic couplings is indirectly formed in a stepwise fashion via the reaction intermediate NaI. By analyzing the angular dependencies of fragment distributions, we are able to identify the reaction intermediate NaI from the weak to the strong field-induced nonadiabatic regimes. Furthermore, the energy levels of NaI can be extracted from the quantum interference patterns of the transient photofragment momentum distribution.
Explore related subjects
Keep this discovery
Chuan-Cun Shu, Kai-Jun Yuan, Daoyi Dong, Ian R. Petersen, Andre D. Bandrauk. 2018-06-08. Identifying Strong-Field Effects in Indirect Photofragmentation Reactions. https://doi.org/10.1021/acs.jpclett.6b02613
Cite the original work for its findings. Save a collection to share your selection of sources.