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氢过氧化丁基过氧异构化和分解的计算动力学:氢键作用影响的研究

Computational Kinetics of Hydroperoxybutylperoxy Isomerizations and Decompositions: A Study of the Effect of Hydrogen Bonding.

作者信息

Mohamed Samah Y, Davis Alexander C, Al Rashidi Mariam J, Sarathy S Mani

机构信息

King Abdullah University of Science and Technology , Clean Combustion Research Center , Thuwal , 23955-6900 , Saudi Arabia.

Franklin and Marshall College , Lancaster , Pennsylvania 17604-3003 , United States.

出版信息

J Phys Chem A. 2018 Aug 2;122(30):6277-6291. doi: 10.1021/acs.jpca.8b04415. Epub 2018 Jul 20.

Abstract

Hydroperoxyalkylperoxy (OOQOOH) radicals are important intermediates in combustion chemistry. The conventional isomerization of OOQOOH radicals to form ketohydroperoxides has been long believed to be the most important chain branching reaction under the low-temperature combustion conditions. In this work, the kinetics of competing pathways (alternative isomerization, concerted elimination, and H-exchange pathways) to the conventional isomerization of different β-, γ- and Δ-OOQOOH butane isomers are investigated. Six- and seven-membered ring conventional isomerizations are found to be the dominant pathways, whereas alternative isomerizations are more important than conventional isomerization, when the latter proceeded via a more strained transition state ring. The oxygen atoms in OOQOOH radicals introduce intramolecular hydrogen bonding (HB) that significantly affects the energies of reacting species and transition states, ultimately influencing chemical kinetics. Conceptually, HB has a dual effect on the stability of chemical species, the first being the stabilizing effect of the actual intramolecular HB force, and the second being the destabilizing effect of ring strain imposed by the HB conformer. The overall effect can be quantified by determining the difference between the minimum energy conformers of a chemical species or transition state that have HB and that do not have HB (non-hydrogen bonding (NHB)). The stabilization effect of HB on the species and transition sates is assessed, and its effect on the calculated rate constants is also considered. Our results show that, for most species and transition states, HB stabilizes their energies by as much as 2.5 kcal/mol. However, NHB conformers are found to be more stable by up to 2.7 kcal/mol for a few of the considered species. To study the effect of HB on rate constants, reactions are categorized into two groups ( groups one and two) based on the structural similarity of the minimum energy conformers of the reactant and transition state, for a particular reaction. For cases where the reactant and transition state conformers are similar (i.e., both HB or NHB structures), group one, the effect of HB on reaction kinetics is major only if the magnitudes of the stabilization energy of the reactant and transition state are quite different. Meanwhile, for group two, where the reactant and transition state prefer different conformers (one HB and the other NHB), HB affects the kinetics when the stabilization energy of the reactant or transition state is significant or the entropy effect is important. This information is useful in determining corrections accounting for HB effects when assigning rate parameters for chemical reactions using estimation and/or analogy, where analogies usually result in inaccuracies when modeling atmospheric and combustion processes.

摘要

氢过氧烷基过氧(OOQOOH)自由基是燃烧化学中的重要中间体。长期以来,人们一直认为OOQOOH自由基的传统异构化形成氢过氧酮是低温燃烧条件下最重要的链分支反应。在这项工作中,研究了不同β-、γ-和Δ-OOQOOH丁烷异构体与传统异构化竞争的途径(替代异构化、协同消除和氢交换途径)的动力学。发现六元环和七元环的传统异构化是主要途径,而当传统异构化通过应变更大的过渡态环进行时,替代异构化比传统异构化更重要。OOQOOH自由基中的氧原子引入了分子内氢键(HB),这显著影响了反应物和过渡态的能量,最终影响了化学动力学。从概念上讲,HB对化学物种的稳定性有双重影响,第一个是实际分子内HB力的稳定作用,第二个是HB构象体施加的环应变的去稳定作用。可以通过确定具有HB和不具有HB(非氢键(NHB))的化学物种或过渡态的最低能量构象体之间的差异来量化总体效果。评估了HB对物种和过渡态的稳定作用,并考虑了其对计算速率常数的影响。我们的结果表明,对于大多数物种和过渡态,HB使它们的能量稳定高达2.5千卡/摩尔。然而,对于一些所考虑的物种,发现NHB构象体的稳定性高出2.7千卡/摩尔。为了研究HB对速率常数的影响,对于特定反应,根据反应物和过渡态的最低能量构象体的结构相似性将反应分为两组(第一组和第二组)。对于反应物和过渡态构象体相似的情况(即都是HB或NHB结构),即第一组,只有当反应物和过渡态的稳定能大小有很大差异时,HB对反应动力学的影响才是主要的。同时,对于第二组,反应物和过渡态倾向于不同的构象体(一个是HB,另一个是NHB),当反应物或过渡态的稳定能显著或熵效应很重要时,HB会影响动力学。当使用估计和/或类比为化学反应分配速率参数时,这些信息对于确定考虑HB效应的校正很有用,在对大气和燃烧过程进行建模时,类比通常会导致不准确。

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