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环戊烷低温氧化产物及自由基中间体的定量检测。

Quantitative Detection of Products and Radical Intermediates in Low-Temperature Oxidation of Cyclopentane.

机构信息

Combustion Research Facility, Mail Stop 9055, Sandia National Laboratories, Livermore, California 94551-0969, United States.

出版信息

J Phys Chem A. 2021 May 27;125(20):4467-4479. doi: 10.1021/acs.jpca.1c02001. Epub 2021 May 18.

Abstract

We present a combined experimental and theoretical investigation of the autoignition chemistry of a prototypical cyclic hydrocarbon, cyclopentane. Experiments using a high-pressure photolysis reactor coupled to time-resolved synchrotron VUV photoionization mass spectrometry directly probe the short-lived radical intermediates and products in cyclopentane oxidation reactions. We detect key peroxy radical intermediates ROO and OOQOOH, as well as several hydroperoxides, formed by second O addition. Automated quantum chemical calculations map out the R + O + O reaction channels and demonstrate that the detected intermediates belong to the dominant radical chain-branching pathway: ROO (+ O) → γ-QOOH + O → γ-OOQOOH → products. ROO, OOQOOH, and hydroperoxide products of second-O addition undergo extensive dissociative ionization, making their experimental assignment challenging. We use photoionization dynamics calculations to aid in their characterization and report the absolute photoionization spectra of isomerically pure ROO and γ-OOQOOH. A global statistical fit of the observed kinetics enables reliable quantification of the time-resolved concentrations of these elusive, yet critical species, paving the way for detailed comparisons with theoretical predictions from master-equation-based models.

摘要

我们对一种典型的环状烃——环戊烷的自动点火化学进行了实验和理论综合研究。使用高压光解反应器结合时间分辨同步加速器 VUV 光解质谱直接探测环戊烷氧化反应中短寿命自由基中间体和产物的实验。我们检测到关键的过氧自由基中间体 ROO 和 OOQOOH 以及由第二次 O 添加形成的几种过氧化物。自动量子化学计算描绘了 R + O + O 反应通道,并证明检测到的中间体属于主要的自由基链分支途径:ROO(+O)→γ-QOOH+O→γ-OOQOOH→产物。ROO、OOQOOH 和第二次 O 添加的过氧化物产物会经历广泛的离解电离,这使得它们的实验分配具有挑战性。我们使用光解动力学计算来帮助其特性表征,并报告了异构纯 ROO 和γ-OOQOOH 的绝对光解光谱。对观察到的动力学的全局统计拟合使这些难以捉摸但至关重要的物种的时间分辨浓度的可靠量化成为可能,为与基于主方程的模型的理论预测进行详细比较铺平了道路。

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