Collisional Deactivation of Highly Vibrationally Excited SO2: A Time-Resolved FTIR Emission Spectroscopy Study
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D. Qin
Time-resolved Fourier transform IR emission spectroscopy, capable of 10-8 s and 0.1 cm-1 spectral resolution, has been used to study the collisional deactivation of highly vibrationally excited SO2 by bath-gas molecules Ar, N2, O2, CO2 and SF6. The vibrationally excited SO2 were initially prepared with 32,500 cm-1 energy in the X˜1A1 state by the pulsed 308 nm laser excitation followed by internal conversion. The entire collisional deactivation process of the excited SO2 was monitored by time-resolved IR emission spectra through the IR active transitions. The average energy, <E>, of excited SO2 was extracted from the IR emission bands using known vibrational constants and selection rules. <E>is further used to derive the average energy loss per collision, <E>, by each of the bath-gas molecules. The results show that <E> increases from mono- and di-atomic quenchers to more complex polyatomic molecules, as V-V energy transfer contributes to V-T/R. For all bath molecules, <E> increases with <E> and displays a marked increase at <E> ≈ 20,000 cm-1. The observed threshold behavior most likely arises from intramolecular vibronic coupling within SO2 and implies the importance of long range interaction in intermolecular energy transfer.
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- Collisional Deactivation of Highly Vibrationally Excited SO2: A Time-Resolved FTIR Emission Spectroscopy Study
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- Kinetic Analysis of Complex Chemical Activation and Unimolecular Dissociation Reactions using QRRK Theory and the Modified Strong Collision Approximation
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Articles in the same Issue
- Approximate Factorization of Molecular Potential Surfaces II. Internal Rotors
- A Thermodynamic Method of Estimating Anharmonic Molecular Densities of States
- The Heterogeneous Kinetics of the Reactions ClONO2 + HX/ice (X = Br, I), BrONO2 + HI/ice and the Reactivity of the Interhalogens BrCl, ICl and IBr with HX/ice (X = Cl, Br, I) in the Temperature Range 180 to 205 K
- Collisional Deactivation of Highly Vibrationally Excited SO2: A Time-Resolved FTIR Emission Spectroscopy Study
- Transitions in Order and Molecularity with Temperature in Gaseous Metal Oxidation Reactions. The Sb-O2 System
- Kinetic Analysis of Complex Chemical Activation and Unimolecular Dissociation Reactions using QRRK Theory and the Modified Strong Collision Approximation
- Chemical Reactions in Ionic Molecular Aggregates. An ab initio and R2PI-Study of the Halogenbenzene/Ammonia System
- Internal Conversion with 3,5-Dimethyl-4-(methylamino)benzonitrile in Alkane Solvents