M. Drabbels et Am. Wodtke, ROTATIONAL MOTION COMPENSATES THE ENERGY DEFECT IN NEAR-RESONANT VIBRATION VIBRATION ENERGY-TRANSFER - A STATE-TO-STATE STUDY OF NO(V)+N2O, The Journal of chemical physics, 109(2), 1998, pp. 355-358
lack of understanding of the factors that compensate energy defects in
near resonant V-V energy transfer constrains our ability to accuratel
y predict resonance widths and, thus, the overall importance of such p
rocesses. We have carried out one of the first truly state-to-state me
asurements of near resonant V-V energy transfer under single collision
conditions, employing the crossed molecular beams, stimulated emissio
n pumping technique. We have varied the energy defect Delta E for the
process: NO X (2)Pi(upsilon-1)+N2O(0,0,1), by changing the prepared vi
brational state from upsilon=22 (Delta E= + 14 cm(-1)) to upsilon = 21
(Delta E= -18 cm(-1)) to upsilon=20 (Delta E= -49 cm(-1)). Changes in
the energy transfer efficiencies and rotational distributions of vibr
ationally inelastically scattered NO with energy defect both strongly
suggest that molecular rotation (both of NO and N2O) is responsible fo
r compensating the energy defect. Furthermore it appears that relative
translation is ineffective in compensating the energy defect. A Delta
J(NO)similar to Delta J(N2O) approximation also appears valid. (C) 19
98 American Institute of Physics.