Variational transition state theory with multidimensional tunnelling and kinetic isotope effects in the reactions of C2H6, C2H5D and C2D6 with .CCl3 to produce CHCl3 and CDCl3 |
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Authors: | Seyedeh Leila Hashemi Dashtaki |
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Affiliation: | Department of Chemistry, Yasouj University, Yasouj, Iran |
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Abstract: | ABSTRACTRate constants for the reactions of C2H6, C2H5D and C2D6 with .CCl3. for the production of CHCl3 and CDCl3 (k1, k2, k3 and k4) were computed using variational transition state theory coupled with hybrid-meta density functional theory (MPWB1K) over the temperature range of 200–2900 K. The ground-state vibrational adiabatic potential was plotted for all channels. Small- and large-curvature tunnelling were determined to include quantum effects in the calculation of rate constants. Harmonic vibrational frequencies along the reaction path were calculated in curvilinear coordinates with scaled frequencies. Anharmonicity was included in the lowest-frequency torsion. The position of formation and dissociation of bonds was specified using the variation in harmonic vibrational frequencies along the reaction path. Representative tunnelling energy and the thermally averaged transmission probability at 298 K (P(E)exp?( ? ΔE/RT)) were determined for the reactions in which tunnelling is important. The kinetic isotope effect was used to calculate the considerable contributions of tunnelling and vibration. The expressions for rate constants were determined using nonlinear least-square fitting over the temperature range of 200–2900 K. |
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Keywords: | Kinetics potential energy surface rate constant tunnelling kinetic isotope effect |
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