Experimental and theoretical study of the collisional quenching of S( 1 D) by Ar
We present an experimental and theoretical investigation of the deactivation rate of S( D) atoms by collisions with argon. Kinetic measurements were performed at temperatures from 5.8 K to 298 K in cold uniform supersonic flows using a CRESU (Cinétique de Réaction en Ecoulement Supersonique Uniforme...
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Veröffentlicht in: | Physical chemistry chemical physics : PCCP 2017, Vol.19 (42), p.28555-28571 |
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Hauptverfasser: | , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | We present an experimental and theoretical investigation of the deactivation rate of S(
D) atoms by collisions with argon. Kinetic measurements were performed at temperatures from 5.8 K to 298 K in cold uniform supersonic flows using a CRESU (Cinétique de Réaction en Ecoulement Supersonique Uniforme or Reaction Kinetics in a Uniform Supersonic Flow) apparatus. In order to simulate them, ab initio electronic structure calculations using internally contracted MRCI methodology were performed to describe the interaction. Starting from them, close-coupling calculations were carried out to determine collisional quenching probabilities for the transition S(
D) → S(
P) in the energy range 1-3000 K (1 K ≈ 0.7 cm
), sufficient to calculate thermal rate coefficients up to 300 K. Stückelberg-like oscillations in the quenching probabilities as a function of the energy are found and interpreted using a semiclassical model. Differences between the temperature dependence of the experimental and theoretical rate coefficients are detected at low temperatures. They are discussed in the light of a study of the high sensitivity of the theoretical results to the potential curves, due to the interference mechanisms which underlie the process. |
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ISSN: | 1463-9076 1463-9084 |
DOI: | 10.1039/c7cp05279k |