AI Article Synopsis

  • - The isodesmic reaction method is utilized to analyze the potential energy surface (PES) and rate constants for barrierless unimolecular dissociation reactions in alkanes, which produce two alkyl radicals, and their reverse processes.
  • - A new correction approach is introduced to refine PES calculations at the UB3LYP/6-31+G(d,p) level, showing that deviations from the more accurate CASPT2/aug-cc-pVTZ level are significantly reduced from over 35 kcal/mol to within 2 kcal/mol after applying the correction.
  • - The study also emphasizes the importance of considering pressure effects on rate constants, particularly at high temperatures, and highlights how molecular size influences these pressure-dependent rate constants

Article Abstract

The isodesmic reaction method is applied to calculate the potential energy surface (PES) along the reaction coordinates and the rate constants of the barrierless reactions for unimolecular dissociation reactions of alkanes to form two alkyl radicals and their reverse recombination reactions. The reaction class is divided into 10 subclasses depending upon the type of carbon atoms in the reaction centers. A correction scheme based on isodesmic reaction theory is proposed to correct the PESs at UB3LYP/6-31+G(d,p) level. To validate the accuracy of this scheme, a comparison of the PESs at B3LYP level and the corrected PESs with the PESs at CASPT2/aug-cc-pVTZ level is performed for 13 representative reactions, and it is found that the deviations of the PESs at B3LYP level are up to 35.18 kcal/mol and are reduced to within 2 kcal/mol after correction, indicating that the PESs for barrierless reactions in a subclass can be calculated meaningfully accurately at a low level of ab initio method using our correction scheme. High-pressure limit rate constants and pressure dependent rate constants of these reactions are calculated based on their corrected PESs and the results show the pressure dependence of the rate constants cannot be ignored, especially at high temperatures. Furthermore, the impact of molecular size on the pressure-dependent rate constants of decomposition reactions of alkanes and their reverse reactions has been studied. The present work provides an effective method to generate meaningfully accurate PESs for large molecular system.

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Source
http://dx.doi.org/10.1021/acs.jpca.8b00877DOI Listing

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