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Rapid unimolecular reaction of stabilized Criegee intermediates and implications for atmospheric chemistry

机译:稳定的Criegee中间体的快速单分子反应及其对大气化学的影响

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摘要

Elucidating atmospheric oxidation mechanisms is necessary for estimating the lifetimes of atmospheric species and understanding secondary organic aerosol formation and atmospheric oxidation capacity. We report an unexpectedly fast mechanistic pathway for the unimolecular reactions of large stabilized Criegee intermediates, which involves the formation of bicyclic structures from large Criegee intermediates containing an aldehyde group. The barrier heights of the mechanistic pathways are unexpectedly low – about 2–3 kcal/mol – and are at least 10 kcal/mol lower than those of hydrogen shift processes in large syn Criegee intermediates; and the calculated rate constants show that the mechanistic pathways are 105-109 times faster than those of the corresponding hydrogen shift processes. The present findings indicate that analogous low-energy pathways can now also be expected in other large Criegee intermediates and that oxidative capacity of some Criegee intermediates is smaller than would be predicted by existing models.
机译:阐明大气氧化机制对于估算大气物种的寿命以及理解二次有机气溶胶的形成和大气氧化能力是必要的。我们报告了大型稳定的Criegee中间体的单分子反应的出乎意料的快速机制途径,这涉及从包含醛基的大型Criegee中间体形成双环结构。机械途径的势垒高度出乎意料地低-约2–3 kcal / mol –并且比大型Syn Criegee中间体的氢转移过程低至少10 kcal / mol。计算出的速率常数表明,其机理途径比相应的氢转移过程快10 5 -10 9 倍。目前的发现表明,现在也可以在其他大型Criegee中间体中预期类似的低能途径,并且某些Criegee中间体的氧化能力比现有模型预测的要小。

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