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氢键对羟基自由基与异戊烯醇和3-甲基-2-丁烯-1-醇反应活性的影响:激波管和多结构扭转变分过渡态理论研究

The effect of hydrogen bonding on the reactivity of OH radicals with prenol and isoprenol: a shock tube and multi-structural torsional variational transition state theory study.

作者信息

Mohamed Samah Y, Monge-Palacios M, Giri Binod R, Khaled Fethi, Liu Dapeng, Farooq Aamir, Sarathy S Mani

机构信息

King Abdullah University of Science and Technology (KAUST), Clean Combustion Research Center (CCRC), Physical Sciences and Engineering Division Thuwal, 23955-6900, Saudi Arabia.

出版信息

Phys Chem Chem Phys. 2022 May 25;24(20):12601-12620. doi: 10.1039/d2cp00737a.

Abstract

The presence of two functional groups (OH and double bond) in C methyl-substituted enols (, isopentenols), such as 3-methyl-2-buten-1-ol (prenol) and 3-methyl-3-buten-1-ol (isoprenol), makes them excellent biofuel candidates as fuel additives. As OH radicals are abundant in both combustion and atmospheric environments, OH-initiated oxidation of these isopentenols over wide ranges of temperatures and pressures needs to be investigated. In alkenes, OH addition to the double bond is prominent at low temperatures (, below ∼700 K), and H-atom abstraction dominates at higher temperatures. However, we find that the OH-initiated oxidation of prenol and isoprenol displays a larger role for OH addition at higher temperatures. In this work, the reaction kinetics of prenol and isoprenol with OH radicals was investigated over the temperature range of 900-1290 K and pressure of 1-5 atm by utilizing a shock tube and OH laser diagnostic. To rationalize these chemical systems, variational transition state theory calculations with multi-structural torsional anharmonicity and small curvature tunneling corrections were run using a potential energy surface characterized at the UCCSD(T)/jun-cc-pVQZ//M06-2X/6-311++G(2df,2pd) level of theory. A good agreement was observed between the experiment and theory, with both predicting a non-Arrhenius behavior and negligible pressure effects. OH additions to the double bond of prenol and isoprenol were found to be important, with at least 50% contribution to the total rate constants even at temperatures as high as 700 and 2000 K, respectively. This behavior was attributed to the stabilizing effect induced by hydrogen bonding between the reacting OH radical and the OH functional group of isopentenols at the saddle points. These stabilizing intermolecular interactions help mitigate the entropic effects that hinder association reactions as temperature increases, thus extending the prominent role of addition pathways to high temperatures. The site-specific rate constants were also found to be slower than their analogous reactions of OH + -alkenes.

摘要

碳甲基取代的烯醇(如异戊烯醇),例如3 - 甲基 - 2 - 丁烯 - 1 - 醇(异戊二烯醇)和3 - 甲基 - 3 - 丁烯 - 1 - 醇(异戊烯醇)中存在两个官能团(OH和双键),这使得它们成为作为燃料添加剂的优秀生物燃料候选物。由于OH自由基在燃烧和大气环境中都很丰富,因此需要研究这些异戊烯醇在很宽的温度和压力范围内由OH引发的氧化反应。在烯烃中,低温(约700 K以下)时OH加成到双键上的反应很显著,而在较高温度下H原子夺取占主导。然而,我们发现异戊二烯醇和异戊烯醇由OH引发的氧化反应在较高温度下OH加成反应起更大作用。在这项工作中,利用激波管和OH激光诊断技术,研究了异戊二烯醇和异戊烯醇与OH自由基在900 - 1290 K温度范围和1 - 5 atm压力下的反应动力学。为了合理描述这些化学体系,使用在UCCSD(T)/jun - cc - pVQZ//M06 - 2X/6 - 311++G(2df,2pd)理论水平下表征的势能面,进行了具有多结构扭转非谐性和小曲率隧道效应校正的变分过渡态理论计算。实验和理论之间观察到良好的一致性,两者都预测了非阿仑尼乌斯行为和可忽略的压力效应。发现OH加成到异戊二烯醇和异戊烯醇的双键上很重要,即使在分别高达70K和2000K的温度下,对总速率常数的贡献至少为50%。这种行为归因于在鞍点处反应的OH自由基与异戊烯醇的OH官能团之间的氢键诱导的稳定化作用。这些稳定的分子间相互作用有助于减轻随着温度升高阻碍缔合反应的熵效应,从而将加成途径的显著作用扩展到高温。还发现位点特异性速率常数比OH与α - 烯烃的类似反应慢。

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