Published 1985 | Version v1
Report

Vibrational excitation in molecular collisions

Description

The collision energy dependence of the total cross sections for state resolved translation to vibration energy transfer was measured for several neutral systems. Measurements were made for vibrationally inelastic collisions of iodine with helium, neon, and hydrogen isotopes, as well as collisions of aniline and paradifluorobenzene with helium, all in the thermal energy range. The new experimental technique uses pulsed supersonic molecular beams for initial state selection, crossed at a variable intersection angle for kinematic, continuously tunable collision energy selection. The scattered products are state-selectively detected in the intersection region by laser induced fluorescence. The iodine cross section energy dependences are approximately linear, quadratic, and cubic for v = 0 to 1, 2, and 3 excitations respectively, as expected from a classical-quantal correspondence principle model. Extreme mode specificity was observed in the polyatoms as only 3 of about 20 energetically accessible vibrations were observed to be collisionally excited. In aniline, the 2 lowest frequency modes were excited. The cross section for single quantum excitations of the inversion mode of the amine group is a strongly decreasing function over the 20 to 250 meV collision energy range

Availability note (English)

University Microfilms Order No. 85-19,318.

Additional details

Publishing Information

Imprint Pagination
229 p.

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
17048185
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS;
Resource subtype / Literary indicator
Numerical Data, Thesis, Non-conventional Literature
Descriptors DEI
ANILINE; BENZENE; CROSS SECTIONS; ENERGY DEPENDENCE; ENERGY TRANSFER; EXCITATION; EXPERIMENTAL DATA; HELIUM; HYDROGEN; IODINE; MILLI EV RANGE; MOLECULE-MOLECULE COLLISIONS; NEON; VIBRATIONAL STATES
Descriptors DEC
AMINES; AROMATICS; COLLISIONS; DATA; ELEMENTS; ENERGY LEVELS; ENERGY RANGE; ENERGY-LEVEL TRANSITIONS; EXCITED STATES; HALOGENS; HYDROCARBONS; INFORMATION; MOLECULE COLLISIONS; NONMETALS; NUMERICAL DATA; ORGANIC COMPOUNDS; RARE GASES