Interest in hig'/> Reaction Paths and Chemical Activation Reactions of 2-Methyl-5-Furanyl Radical with 3O<sub>2</sub>
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Reaction Paths and Chemical Activation Reactions of 2-Methyl-5-Furanyl Radical with 3O2

机译:2-甲基-5-呋喃基的反应路径和化学活化反应与 3 O 2

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Interest in high-energy substituted furans has been increasing due to their occurrence in biofuel production and their versatility in conversion to other useful products. Methylfurans are the simplest substituted furans and understanding their reaction pathways, thermochemical properties, including intermediate species stability, and chemical kinetics would aid in the study of larger furans. Furan ring C–H bonds have been shown to be extremely strong, approximately 120 kcal mol–1, due in part to the placement of the oxygen atom and aromatic-like resonance, both within the ring. The thermochemistry and kinetics of the oxidation of 2-methyfuran radical at position 5 of the furan ring, 2-methyl-5-furanyl radical (2MF5j), is analyzed. The resulting chemically activated species, 2MF5OOj radical, has a well depth of 51 kcal mol–1 below the 2MF5j + O2 reactants; this is 4–5 kcal mol–1 deeper than that of phenyl and vinyl radical plus O2, with both of these reactions known to undergo chain branching. Important, low-energy reaction pathways include chain branching dissociations, intramolecular abstractions, group transfers, and radical oxygen additions. Enthalpies of formation, entropies, and heat capacities for the stable molecules, radicals, and transition-state species are analyzed using computational methods. Calculated ΔH°f?298 values were determined using an isodesmic work reaction from the CBS-QB3 composite method. Elementary rate parameters are from saddle point transition-state structures and compared to variational transition-state analysis for the barrierless reactions. Temperature- and pressure-dependent rate constants which are calculated using QRRK and master equation analysis is used for falloff and stabilization.]]>
机译:<![cdata [ src ='http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/jpcafh/2017/jpcafh.2017.121.issue-39/acs.jpca.7b06650/ 20170929 / Images / Medium / JP-2017-066505_0013.gif“>高能量取代呋喃的兴趣由于其在生物燃料生产中发生以及转换为其他有用产品的多功能性而越来越大。甲基磺脲是最简单的取代的呋喃,了解它们的反应途径,热化学性质,包括中间物种稳定性,以及化学动力学将有助于研究较大的呋喃。呋喃环C-H键已被证明是极强的,大约120kcal摩尔 -1 -1 / sup>,部分地由于氧原子和芳香状的共振在环内部而导致的。分析了呋喃环,2-甲基-5-呋喃基(2MF5J)在呋喃环,2-甲基-5-呋喃基(2MF5J)中的2-甲基呋喃的氧化的热化学和动力学。所得的化学活化物质2MF5OOJ自由基具有孔深度为2MF5J + O 2℃以下的51千卡摩尔 -1 -1 / sop>;这是比苯基和乙烯基加密的4-5kcal mol -1 -1 -1 -1 -1 -1 / sup> 2℃加上o 2 ,其中两种已知的这些反应被众所周知的链支化。重要的是,低能量反应途径包括链分支解剖,分子内抽象,群体转移和自由基氧添加。使用计算方法分析了稳定分子,自由基和过渡态物种的形成,熵和热容量的焓。计算δ1H ° f≤298值,使用来自CBS-QB3复合方法的体性反应确定。基本速率参数来自鞍点转换状态结构,与禁止反应的变分过渡状态分析相比。使用QRRK和主方程分析计算的温度和压力依赖性速率常数用于降低和稳定。]]>

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