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碳酸二甲酯与羟基自由基反应的高温实验与理论动力学联合研究

A combined high-temperature experimental and theoretical kinetic study of the reaction of dimethyl carbonate with OH radicals.

作者信息

Khaled Fethi, Giri Binod Raj, Szőri Milán, Mai Tam V-T, Huynh Lam K, Farooq Aamir

机构信息

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

Institute of Chemistry, Faculty of Materials Science and Engineering, University of Miskolc, Egyetemváros A/4., H-3515 Miskolc, Hungary.

出版信息

Phys Chem Chem Phys. 2017 Mar 8;19(10):7147-7157. doi: 10.1039/c6cp07318b.

Abstract

The reaction kinetics of dimethyl carbonate (DMC) and OH radicals were investigated behind reflected shock waves over the temperature range of 872-1295 K and at pressures near 1.5 atm. Reaction progress was monitored by detecting OH radicals at 306.69 nm using a UV laser absorption technique. The rate coefficients for the reaction of DMC with OH radicals were extracted using a detailed kinetic model developed by Glaude et al. (Proc. Combust. Inst. 2005, 30(1), 1111-1118). The experimental rate coefficients can be expressed in Arrhenius form as: k = 5.15 × 10 exp(-2710.2/T) cm mol s. To explore the detailed chemistry of the DMC + OH reaction system, theoretical kinetic analyses were performed using high-level ab initio and master equation/Rice-Ramsperger-Kassel-Marcus (ME/RRKM) calculations. Geometry optimization and frequency calculations were carried out at the second-order Møller-Plesset (MP2) perturbation level of theory using Dunning's augmented correlation consistent-polarized valence double-ζ basis set (aug-cc-pVDZ). The energy was extrapolated to the complete basis set using single point calculations performed at the CCSD(T)/cc-pVXZ (where X = D, T) level of theory. For comparison purposes, additional ab initio calculations were also carried out using composite methods such as CBS-QB3, CBS-APNO, G3 and G4. Our calculations revealed that the H-abstraction reaction of DMC by OH radicals proceeds via an addition elimination mechanism in an overall exothermic process, eventually forming dimethyl carbonate radicals and HO. Theoretical rate coefficients were found to be in excellent agreement with those determined experimentally. Rate coefficients for the DMC + OH reaction were combined with literature rate coefficients of four straight chain methyl ester + OH reactions to extract site-specific rates of H-abstraction from methyl esters by OH radicals.

摘要

在反射激波条件下,研究了碳酸二甲酯(DMC)与OH自由基在872 - 1295 K温度范围和接近1.5 atm压力下的反应动力学。采用紫外激光吸收技术,通过检测306.69 nm处的OH自由基来监测反应进程。利用Glaude等人(《燃烧学报》,2005年,30(1),1111 - 1118)开发的详细动力学模型,提取了DMC与OH自由基反应的速率系数。实验速率系数可用阿伦尼乌斯形式表示为:k = 5.15 × 10 exp(-2710.2/T) cm³ mol⁻¹ s⁻¹。为探究DMC + OH反应体系的详细化学过程,采用高水平从头算和主方程/ Rice - Ramsperger - Kassel - Marcus(ME/RRKM)计算进行了理论动力学分析。使用Dunning的增强相关一致极化价双ζ基组(aug - cc - pVDZ),在二阶Møller - Plesset(MP2)微扰理论水平下进行几何优化和频率计算。利用在CCSD(T)/cc - pVXZ(其中X = D,T)理论水平下进行的单点计算,将能量外推至完整基组。为作比较,还使用CBS - QB3、CBS - APNO、G3和G4等复合方法进行了额外的从头算计算。我们的计算表明,OH自由基对DMC的氢提取反应通过加成消除机制在一个总体放热过程中进行,最终形成碳酸二甲酯自由基和HO。发现理论速率系数与实验测定的结果高度吻合。将DMC + OH反应的速率系数与四个直链甲酯 + OH反应的文献速率系数相结合,以提取OH自由基从甲酯中进行位点特异性氢提取的速率。

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