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Reflected Shock Tube Studies of High-Temperature Rate Constants for OH + CH<sub>4</sub>→ CH<sub>3</sub>+ H<sub>2</sub>O and CH<sub>3</sub>+ NO<sub>2</sub>→ CH<sub>3</sub>O + NO
93
Citations
51
References
2005
Year
Radical EmissionEngineeringAtomic Emission SpectroscopyMechanical EngineeringChemistryTemperature RangeShock Tube StudiesThermodynamicsBiophysicsShock CompressionHigh-temperature Rate ConstantsPhysicsPhotochemistryRadical (Chemistry)Shock Tube TechniqueNatural SciencesCombustion ScienceSpectroscopyApplied PhysicsChemical KineticsOh Radical Production
The reflected shock tube technique with multipass absorption spectrometric detection of OH radicals at 308 nm has been used to study the reactions OH + CH(4) --> CH(3) + H(2)O and CH(3) + NO(2) --> CH(3)O + NO. Over the temperature range 840-2025 K, the rate constants for the first reaction can be represented by the Arrhenius expression k = (9.52 +/- 1.62) x 10(-11) exp[(-4134 +/- 222 K)/T] cm(3) molecule(-1) s(-1). Since this reaction is important in both combustion and atmospheric chemistry, there have been many prior investigations with a variety of techniques. The present results extend the temperature range by 500 K and have been combined with the most accurate earlier studies to derive an evaluation over the extended temperature range 195-2025 K. A three-parameter expression describes the rate behavior over this temperature range, k = (1.66 x 10(-18))T(2.182) exp[(-1231 K)/T] cm(3) molecule(-1) s(-1). Previous theoretical studies are discussed, and the present evaluation is compared to earlier theoretical estimates. Since CH(3) radicals are a product of the reaction and could cause secondary perturbations in rate constant determinations, the second reaction was studied by OH radical production from the fast reactions CH(3)O --> CH(2)O + H and H + NO(2) --> OH + NO. The measured rate constant is 2.26 x 10(-11) cm(3) molecule(-1) s(-1) and is not dependent on temperature from 233 to 1700 K within experimental error.
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