Predicting the results of collisions of polyatomic molecules with a bath of atoms is a research area that has attracted substantial interest in both experimental and theoretical chemistry. Energy transfer, which is the consequence of such collisions, plays an important role in gas-phase kinetics and relaxation of excited molecules. We present a study of energy transfer in single collisions of highly vibrationally excited allyl radical in argon. We evolve a total of 52 000 classical trajectories on a potential energy surface, which is the sum of an ab initio intramolecular potential for the allyl and a pairwise interaction potential describing the argon's effect on the allyl. The former is described by means of a permutationally invariant fu...
A simple model potential energy surface is constructed and used in both quasiclassical trajectory ca...
Classical trajectory simulations of intermolecular collisions were performed for a series of polycyc...
Author Institution: Department of Chemistry, Temple University; Philadelphia, Pennsylvania 19122, US...
The influence of rotational excitation on energy transfer in single collisions of allyl with argon a...
The excitation/de-excitation step in the Lindemann mechanism is investigated in detail using model d...
The excitation/de-excitation step in the Lindemann mechanism is investigated in detail using model d...
A model for energy transfer in the collision between an atom and a highly excited target molecule ha...
The method of obtaining collisional energy transfer data for collissions between a highly excited po...
International audienceThe semi-classical calculation of collisional energy transfer rates in spheric...
Author Institution: Department of Chemistry, University of GuelphThe transfer and partitioning of el...
Quasiclassical trajectory calculations of the energy transfer of highly vibrationally excited benzen...
The measurement and understanding of the rates at which energy is transferred in intermolecular coll...
Data from classical trajectory simulations of the collision of a highly excited molecule with a mona...
Classical trajectory calculations of the rate of collisional energy transfer between a bath gas and ...
Quasi-classical trajectory studies have been performed for the collision of internally excited metha...
A simple model potential energy surface is constructed and used in both quasiclassical trajectory ca...
Classical trajectory simulations of intermolecular collisions were performed for a series of polycyc...
Author Institution: Department of Chemistry, Temple University; Philadelphia, Pennsylvania 19122, US...
The influence of rotational excitation on energy transfer in single collisions of allyl with argon a...
The excitation/de-excitation step in the Lindemann mechanism is investigated in detail using model d...
The excitation/de-excitation step in the Lindemann mechanism is investigated in detail using model d...
A model for energy transfer in the collision between an atom and a highly excited target molecule ha...
The method of obtaining collisional energy transfer data for collissions between a highly excited po...
International audienceThe semi-classical calculation of collisional energy transfer rates in spheric...
Author Institution: Department of Chemistry, University of GuelphThe transfer and partitioning of el...
Quasiclassical trajectory calculations of the energy transfer of highly vibrationally excited benzen...
The measurement and understanding of the rates at which energy is transferred in intermolecular coll...
Data from classical trajectory simulations of the collision of a highly excited molecule with a mona...
Classical trajectory calculations of the rate of collisional energy transfer between a bath gas and ...
Quasi-classical trajectory studies have been performed for the collision of internally excited metha...
A simple model potential energy surface is constructed and used in both quasiclassical trajectory ca...
Classical trajectory simulations of intermolecular collisions were performed for a series of polycyc...
Author Institution: Department of Chemistry, Temple University; Philadelphia, Pennsylvania 19122, US...