Importance of rotationally inelastic processes in low-energy Penning ionization of CHF
arXiv:1604.08778 · doi:10.1063/1.4953908
Abstract
Low energy reaction dynamics can strongly depend on the internal structure of the reactants. The role of rotationally inelastic processes in cold collisions involving polyatomic molecules has not been explored so far. Here we address this problem performing a merged-beam study of the He*+CHF Penning ionization reaction in a range of collision energies =0.5--120 K. The experimental cross sections are compared with total reaction cross sections calculated within the framework of the quantum defect theory. We find that the broad range of collision energies combined with the relatively small rotational constants of \chfs makes rotationally inelastic collisions a crucial player in the total reaction dynamics. Quantitative agreement between theory and experiment is only obtained if the energy-dependent probability for rotational excitation is included in the calculations, in stark contrast to previous experiments where classical scaling laws were able to describe the results.
References in corpus (6)
- Observation of Quantum Effects in sub Kelvin Cold Reactions
- Dynamics of gas phase Ne + NH and Ne + ND Penning ionization at low temperatures
- Observation of orbiting resonances in He(3S1) + NH3 Penning ionization
- Quantum theory of reactive collisions for 1/r^n potentials
- Study of the Ne(^3P_2) + CH_3F Electron Transfer Reaction below 1 Kelvin
- First-principle interaction potentials for metastable He(S) and Ne(P) with closed-shell molecules. Application to Penning-Ionizing systems