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Quasiclassical trajectory calculations to evaluate a kinematic constraint on internal energy in suprathreshold collision energy abstraction reactions

机译:准经典轨迹计算,用于评估超临界碰撞能量抽象反应中内部能量的运动学约束

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Experimentally observed product quantum state distributions across a wide range of abstraction reactions at suprathreshold collision energies have shown a strong bias against product internal energy. Only a fraction, sometimes quite a small fraction, of the energetically accessible product quantum states are populated. Picconatto [J. Chem. Phys. 114, 1663 (2001)] noted a simple mathematical relationship between the highest-energy rovibrational states observed and the kinematics of the reaction system. They proposed a reaction model based on reaction kinematics that quantitatively explains this behavior. The model is in excellent agreement with measured quantum state distributions. The assumptions of the model invoke detailed characteristics of reactive trajectories at suprathreshold collision energies. Here we test those assumptions using quasiclassical trajectory calculations for the abstraction reactions H+HCl -> H-2+Cl, D+HCl -> HD+Cl, and H+DCl -> HD+Cl. Trajectories were run on a potential-energy surface calculated with a London-Eyring-Polyani-Sato function with a localized 3-center term (LEPS-3C) previously shown to accurately reproduce experimentally observed product state distributions for the H+HCl abstraction reaction. The trajectories sample collision energies near threshold and also substantially above it. Although the trajectories demonstrate some aspects of the model, they show that it is not valid. However, the inadequacy of the proposed model does not invalidate the apparent kinematic basis of the observed energy constraint. The present results show that there must be some other molecular behavior rooted in the reaction kinematics that is the explanation and the source of the constraint. (c) 2005 American Institute of Physics.
机译:在超阈值碰撞能量下,通过实验观察到的范围广泛的抽象反应中的产物量子态分布显示出对产物内部能的强烈偏见。能量可及的产物量子态中只有一部分,有时是很小的一部分被填充。 Picconatto [J.化学物理114,1663(2001)]指出观察到的最高能量旋转振动状态与反应系统的运动学之间的简单数学关系。他们提出了基于反应运动学的反应模型,可以定量地解释这种行为。该模型与测得的量子态分布非常吻合。该模型的假设调用了超过阈值碰撞能量时反应轨迹的详细特性。在这里,我们使用准经典轨迹计算针对抽象反应H + HCl-> H-2 + Cl,D + HCl-> HD + Cl和H + DCl-> HD + Cl来测试这些假设。轨迹在通过伦敦-艾林-波利亚尼-萨托函数计算的势能表面上运行,该函数具有局域的3个中心项(LEPS-3C),先前显示可以准确地重现H + HCl提取反应的实验观察到的产物状态分布。轨迹采样接近阈值并且也显着高于阈值的碰撞能量。尽管轨迹显示了模型的某些方面,但它们表明模型是无效的。然而,所提出的模型的不足并没有使观察到的能量约束的表观运动学基础无效。目前的结果表明,反应运动学中还必须存在一些其他分子行为,这是约束的解释和来源。 (c)2005年美国物理研究所。

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