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New Pathways for Formation of Acids and Carbonyl Products in Low-Temperature Oxidation: The Korcek Decomposition of γ-Ketohydroperoxides

机译:在低温氧化中形成酸和羰基产物的新途径:γ-酮氢过氧化物的Korcek分解

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摘要

We present new reaction pathways relevant to low-temperature oxidation in gaseous and condensed phases. The new pathways originate from γ-ketohydroperoxides (KHP), which are well-known products in low-temperature oxidation and are assumed to react only via homolytic O–O dissociation in existing kinetic models. Our ab initio calculations identify new exothermic reactions of KHP forming a cyclic peroxide isomer, which decomposes via novel concerted reactions into carbonyl and carboxylic acid products. Geometries and frequencies of all stationary points are obtained using the M06-2X/MG3S DFT model chemistry, and energies are refined using RCCSD(T)-F12a/cc-pVTZ-F12 single-point calculations. Thermal rate coefficients are computed using variational transition-state theory (VTST) calculations with multidimensional tunneling contributions based on small-curvature tunneling (SCT). These are combined with multistructural partition functions (Q[superscript MS–T]) to obtain direct dynamics multipath (MP-VTST/SCT) gas-phase rate coefficients. For comparison with liquid-phase measurements, solvent effects are included using continuum dielectric solvation models. The predicted rate coefficients are found to be in excellent agreement with experiment when due consideration is made for acid-catalyzed isomerization. This work provides theoretical confirmation of the 30-year-old hypothesis of Korcek and co-workers that KHPs are precursors to carboxylic acid formation, resolving an open problem in the kinetics of liquid-phase autoxidation. The significance of the new pathways in atmospheric chemistry, low-temperature combustion, and oxidation of biological lipids are discussed.
机译:我们提出了与气相和冷凝相中的低温氧化有关的新反应途径。新途径源自γ-酮氢过氧化物(KHP),后者是低温氧化过程中的知名产品,并假定仅在现有动力学模型中通过均相O-O分解反应。我们的从头算计算确定了KHP形成环状过氧化物异构体的新放热反应,该反应通过新型协同反应分解为羰基和羧酸产物。使用M06-2X / MG3S DFT模型化学方法获得所有固定点的几何形状和频率,并使用RCCSD(T)-F12a / cc-pVTZ-F12单点计算精炼能量。使用基于小曲率隧穿(SCT)的多维隧穿贡献的变分过渡状态理论(VTST)计算来计算热速率系数。将它们与多结构划分函数(Q [上标MS–T])组合在一起,以获得直接动力学多径(MP-VTST / SCT)气相速率系数。为了与液相测量进行比较,使用连续介电溶剂化模型包括了溶剂效应。当适当考虑到酸催化的异构化时,发现预测的速率系数与实验非常吻合。这项工作为Korcek及其同事30年前的假设提供了理论上的证实,即KHP是羧酸形成的前体,从而解决了液相自氧化动力学的一个开放性问题。讨论了新途径在大气化学,低温燃烧和生物脂质氧化中的意义。

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