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首页> 外文期刊>The Journal of Chemical Physics >Dynamics and kinetics of reversible homo-molecular dimerization of polycyclic aromatic hydrocarbons
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Dynamics and kinetics of reversible homo-molecular dimerization of polycyclic aromatic hydrocarbons

机译:多环芳烃可逆均分子二聚化的动力学和动力学

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Physical dimerization of polycyclic aromatic hydrocarbons (PAHs) has been investigated via molecular dynamics (MD) simulation with the ReaxFF reactive force field that is developed to bridge the gap between the quantum mechanism and classical MD. Dynamics and kinetics of homo-molecular PAH collision under different temperatures, impact parameters, and orientations are studied at an atomic level, which is of great value to understand and model the PAH dimerization. In the collision process, the enhancement factors of homo-molecular dimerizations are quantified and found to be larger at lower temperatures or with smaller PAH instead of size independent. Within the capture radius, the lifetime of the formed PAH dimer decreases as the impact parameter increases. Temperature and PAH characteristic dependent forward and reverse rate constants of homo-molecular PAH dimerization are derived from MD simulations, on the basis of which a reversible model is developed. This model can predict the tendency of PAH dimerization as validated by pyrene dimerization experiments [H. Sabbah et al., J. Phys. Chem. Lett. 1(19), 2962 (2010)]. Results from this study indicate that the physical dimerization cannot be an important source under the typical flame temperatures and PAH concentrations, which implies a more significant role played by the chemical route. (C) 2017 Author(s).
机译:通过分子动力学(MD)模拟研究了多环芳烃(PAHS)的物理二聚化,其利用REAXFF的反应力场进行了开发的,该测量的反应力场弥合量子机构和古典MD之间的间隙。在不同温度下的同源分子PAH碰撞的动态和动力学在原子水平上研究了不同温度,影响参数和方向,这是理解和模拟PAH二聚体的重要价值。在碰撞过程中,量化同源分子二聚体的增强因子,发现在较低温度下或具有较小的PAH而不是尺寸独立于尺寸。在捕获半径内,随着冲击参数增加,所形成的PAH二聚体的寿命减小。优异分子PAH二聚化的温度和PAH特征依赖性前向和逆率常数来自MD模拟,基于该MD模拟,基于该MD模拟,其开发了可逆模型。该模型可以预测芘二聚化实验验证的PAH二聚体的趋势[H. Sabbah等人。,J. phys。化学。吧。 1(19),2962(2010)]。本研究结果表明,物理二元化不能成为典型火焰温度和PAH浓度的重要来源,这意味着化学途径发挥的更大作用。 (c)2017年作者。

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