Institute for Computational Science and Technology, Ho-Chi-Minh City, Vietnam.
Phys Chem Chem Phys. 2018 Sep 19;20(36):23578-23592. doi: 10.1039/c8cp03718c.
This work provides a rigorous procedure, within the framework of the Reaction Class Transition State Theory (RC-TST) and the Structure-Activity Relationship (SAR), for predicting reliable thermal rate constants on-the-fly for hydrogen abstraction reactions by methyl/ethyl radicals from Polycyclic Aromatic Hydrocarbons (PAHs) in a temperature range of 300-3000 K. All necessary RC-TST parameters were derived from ab initio calculations for a representative set of 36 reactions on which different error analyses and comparisons with available literature data were carried out. In addition to the good agreement between the RC-TST rate constants and the literature data, the detailed error analyses show that RC-TST/SAR, utilizing either the Linear Energy Relationship (LER) where only the reaction energy is needed or Barrier Height Grouping (BHG) where no additional data is needed, can predict the thermal rate constants for any reaction in the title reaction class with an average systematic error of less than 50% when compared to the explicit rate calculations. Therefore, the constructed RC-TST procedure can be confidently used to obtain reliable rate constants on the fly in an attempt to effectively construct detailed kinetic mechanisms for PAH-related fuels.
本工作在反应类过渡态理论(RC-TST)和构效关系(SAR)的框架内,为预测甲基/乙基自由基从多环芳烃(PAHs)中夺取氢的热反应速率常数提供了一种严格的方法,反应温度范围为 300-3000 K。所有必要的 RC-TST 参数均通过从头计算得出,用于代表 36 个反应的一组反应,对其进行了不同的误差分析和与现有文献数据的比较。除了 RC-TST 速率常数与文献数据之间的良好一致性外,详细的误差分析表明,RC-TST/SAR 可利用仅需要反应能的线性能量关系(LER)或不需要额外数据的势垒高度分组(BHG),来预测标题反应类中任何反应的热反应速率常数,与显式速率计算相比,平均系统误差小于 50%。因此,所构建的 RC-TST 程序可用于可靠地实时获取速率常数,以尝试有效地构建与 PAH 相关燃料的详细动力学机制。