Lin Shi Ying, Bañares Luis, Guo Hua
Department of Chemistry, University of New Mexico, Albuquerque, New Mexico 87131, USA.
J Phys Chem A. 2007 Mar 29;111(12):2376-84. doi: 10.1021/jp0682715. Epub 2007 Mar 8.
Exact quantum mechanical state-to-state differential and integral cross sections and their energy dependence have been calculated on an accurate NH2 potential energy surface (PES), using a newly proposed Chebyshev wave packet method. The NH product is found to have a monotonically decaying vibrational distribution and an inverted rotational distribution. The product angular distributions peak in both forward and backward directions, but with a backward bias. This backward bias is more pronounced than that observed previously on a less accurate PES. Both the differential and integral cross sections oscillate mildly with collision energy, indicating the dominance of short-lived resonances. The quantum mechanical results are compared with those obtained from quasi-classical trajectories. The agreement is generally reasonable and the discrepancies can be attributed to the neglect of quantum effects such as tunneling. Detailed analysis of the trajectories revealed that the backward bias in the differential cross section stems overwhelmingly from the fast insertion component of the reaction, augmented with some flux from the abstraction channel, particularly at high collision energies.
利用新提出的切比雪夫波包方法,在精确的NH₂势能面上计算了精确的量子力学态态微分和积分截面及其能量依赖性。发现NH产物具有单调衰减的振动分布和反转的转动分布。产物角分布在向前和向后方向均有峰值,但向后有偏向。这种向后偏向比先前在精度较低的势能面上观察到的更为明显。微分和积分截面均随碰撞能量轻微振荡,表明短寿命共振占主导。将量子力学结果与准经典轨迹得到的结果进行了比较。一致性总体合理,差异可归因于对隧穿等量子效应的忽略。对轨迹的详细分析表明,微分截面中的向后偏向绝大多数源于反应的快速插入成分,并伴随着来自提取通道的一些通量,特别是在高碰撞能量下。