Selective vibrational excitation of formaldehyde
1A1 by stimulated emission pumping
J. Chem. Phys. 77, 573 (1982); doi:10.1063/1.443596
Issue Date: 1 July 1982
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Stimulated emission pumping (SEP), an optical–optical double resonance scheme whereby highly excited rotation-vibration levels of the electronic ground state may be selecetively populated, is applied to formaldehyde. This method is free of important limitations of other schemes such as IR multiphoton, high overtone, and stimuated Raman pumping. We report fully resolved, assigned, and sub-Doppler (laser linewidth limited to 0.04 cm−1) SEP spectra in the H2CO Ã 1A![[prime]](http://scitation.aip.org/stockgif3/prime.gif)
–
1A1 4
and 2
4
bands. More than 0.02% of the total thermal population in the irradiation volume was excited into a single rotation-vibration level at least 4600 cm−1 above the vibrationless level in the electronic ground state.
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KEYWORDS and PACS
- 33.40.-e
Molecular spectra and interactions of molecules with photons Double resonances and other multiple resonances - 35.20.Pa
Experimentally derived information on atoms and molecules; instrumentation and techniques Molecules Rotation, vibration, and vibration-rotation constants - 33.20.Lg
Molecular spectra and interactions of molecules with photons Molecular spectra, grouped by wavelength ranges Ultraviolet spectra - 35.80.+s
Experimentally derived information on atoms and molecules; instrumentation and techniques Atomic and molecular measurement and techniques - YEAR: 1982
PUBLICATION DATA
0021-9606 (print)
1089-7690 (online)
REFERENCES (18)
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transitions were measured and found in good agreement with calculated rotational band contours. PQ1,3(4) was not measured. However, usingthecalculated rotational contour (Ref. 8), an effective absorption cross section can be estimated.
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0+u) from the hindered photodissociation of I2Ar at 488 nm




