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  4. Intramolecular energy transfer in highly vibrationally excited methanol. II. Multiple time scales of energy redistribution
 
research article

Intramolecular energy transfer in highly vibrationally excited methanol. II. Multiple time scales of energy redistribution

Boyarkin, OV  
•
Rizzo, TR  
•
Perry, DS
1999
The Journal of Chemical Physics

State-selected spectra of the OH stretch overtones of methanol in the range of upsilon(1) = 3-8 reveal spectral splittings and broadenings that result from vibrational couplings within the molecule. We employ a two-color excitation technique in which an infrared pulse promotes jet-cooled methanol molecules to a single rotational state in upsilon(1) = 1 or 2 and a second visible or near-infrared laser pulse is scanned to record a vibrational overtone spectrum. The final vibrationally excited species are detected by infrared laser assisted photofragment spectroscopy. The implications of the spectra for vibrational dynamics in the time domain can be understood in terms of a hypothetical coherent excitation of relevant portions of the spectrum. The observed splittings and widths correspond to three time scales. The largest splittings imply subpicosecond oscillation of energy between the OH stretch and a combination with the C-H stretch (5 nu(1) double left right arrow 4 nu(1) + nu(2) and 6 nu(1) double left right arrow 5 nu(1) + nu(2)) or a combination with the COH bend (7 nu(1) double left right arrow 6 nu(1) + 2 nu(6)). Secondary time scales correspond to finer splittings and are thought to arise from low-order resonances with other vibrational states. We argue that the nonmonotonic energy dependence of the presence and extent of such secondary structure throughout the recorded spectra reflects the requirement of resonance with important zeroth-order states. The third time scale, represented by the widths of the narrowest features at each overtone level, reflects the onset of vibrational energy randomization. These widths increase exponentially with vibrational energy in the range 2 nu(1) up to 8 nu(1). At the highest energy (25 000 cm(-1)) the three time scales begin to converge, implying an irreversible decay of the OH stretch overtone in 300 fs. (C) 1999 American Institute of Physics. [S0021-9606(99)02317-X].

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Type
research article
DOI
10.1063/1.479075
Author(s)
Boyarkin, OV  
Rizzo, TR  
Perry, DS
Date Issued

1999

Published in
The Journal of Chemical Physics
Volume

110

Issue

23

Start page

11346

End page

11358

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LCPM  
Available on Infoscience
December 15, 2005
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/221333
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