Chen Jin-Tao, Liang Yueying, Lang Haoyuan, Lu Xingcai, Yang Lijun, Zhou Chong-Wen
School of Energy and Power Engineering, Beihang University, Beijing 100191, P. R. China.
Combustion Chemistry Centre, School of Biological and Chemical Sciences, MaREI, Ryan Institute, University of Galway, Galway, Ireland.
Phys Chem Chem Phys. 2024 Jul 24;26(29):20022-20036. doi: 10.1039/d4cp01923g.
The chemical kinetic studies of hydrogen atom (H-atom) abstraction reactions by hydroperoxyl (HȮ) radicals from five branched pentanol isomers, including 3-methyl-1-butanol, 2-methyl-1-butanol, 1,1-dimethyl-1-propanol, 1,2-dimethyl-1-propanol, and 2,2-dimethyl-1-propanol were investigated systematically through high-level calculations. Geometry optimization, frequency analysis, and zero-point energy (ZPE) corrections were performed for six reactants, twenty-three transition states (TSs), and twenty-four products at the M06-2X/6-311++G(d,p) level of theory. The intrinsic reaction coordinate calculation was performed at the same level of theory to confirm the transition state connection. The one-dimensional hindered rotor treatment for low-frequency torsional modes was also treated at the M06-2X/6-311++G(d,p) level of theory. The QCISD(T)/CBS level of theory was used to calculate the single-point energies for the species whose T1 diagnostic value was lower than 0.035. At the same time, the CASPT2/CBS level of theory was used to calculate the single-point energies for the channel in which the T1 diagnostic value of transition states was greater than 0.035. Rate constants for the H-atom abstraction reactions from the five branched pentanol isomers by HȮ radicals were calculated by using conventional transition state theory with asymmetric Eckart tunneling corrections in the temperature range of 500-2000 K. Rate constants and branching ratios for the title reactions and the rate rules for ten different H-atom abstraction types were investigated. Temperature-dependent thermochemistry properties for all reactants and products were calculated by the composite methods of G3/G4/CBS-QB3/CBS-APNO, which were in good agreement with the data available in the literature. Rate constants for the H-atom abstraction reactions by HȮ radical from branched pentanol isomers were investigated in this work as part I, and those for linear pentanol isomers will be analyzed in part II. All the calculated kinetics and thermochemistry data can be utilized in the model development for branched pentanol isomers oxidation.
通过高水平计算系统地研究了氢过氧自由基(HȮ)从五种支链戊醇异构体(包括3-甲基-1-丁醇、2-甲基-1-丁醇、1,1-二甲基-1-丙醇、1,2-二甲基-1-丙醇和2,2-二甲基-1-丙醇)夺取氢原子(H原子)反应的化学动力学。在M06-2X/6-311++G(d,p)理论水平上,对六种反应物、二十三个过渡态(TSs)和二十四个产物进行了几何优化、频率分析和零点能(ZPE)校正。在相同理论水平上进行内禀反应坐标计算以确认过渡态连接。还在M06-2X/6-311++G(d,p)理论水平上对低频扭转模式进行了一维受阻转子处理。对于T1诊断值低于0.035的物种,使用QCISD(T)/CBS理论水平计算单点能量。同时,对于过渡态T1诊断值大于0.035的通道,使用CASPT2/CBS理论水平计算单点能量。通过使用传统过渡态理论并在500 - 2000 K温度范围内进行非对称埃卡特隧穿校正,计算了HȮ自由基从五种支链戊醇异构体夺取H原子反应的速率常数。研究了标题反应的速率常数和分支比以及十种不同H原子夺取类型的速率规则。通过G3/G4/CBS-QB3/CBS-APNO复合方法计算了所有反应物和产物的温度相关热化学性质,这些性质与文献中的数据吻合良好。本工作作为第一部分研究了HȮ自由基从支链戊醇异构体夺取H原子反应的速率常数,第二部分将分析直链戊醇异构体的速率常数。所有计算得到的动力学和热化学数据可用于支链戊醇异构体氧化的模型开发。