首页> 外文期刊>The Journal of Chemical Physics >REACTION DYNAMICS OF THE FOUR-CENTERED ELIMINATION CH2OH+-]CHO++H-2 - MEASUREMENT OF KINETIC ENERGY RELEASE DISTRIBUTION AND CLASSICAL TRAJECTORY CALCULATION
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REACTION DYNAMICS OF THE FOUR-CENTERED ELIMINATION CH2OH+-]CHO++H-2 - MEASUREMENT OF KINETIC ENERGY RELEASE DISTRIBUTION AND CLASSICAL TRAJECTORY CALCULATION

机译:四中心消除CH2OH +-] CHO ++ H-2的反应动力学-动力学释放量的测定和经典弹道计算

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Mass-analyzed ion kinetic energy (MIKE) spectrum of CHO+ generated in the unimolecular dissociation of CH2OH+ was measured. Kinetic energy release distribution (KERD) was evaluated by analyzing the spectrum according to the algorithm developed previously. The average kinetic energy release evaluated from the distribution was extraordinarily large, 1.63 eV, corresponding to 75% of the reverse barrier of the reaction. A global analytical potential energy surface was constructed such that the experimental energetics was represented and that various features in the ab initio potential energy surface were closely reproduced. Classical trajectory calculation was carried out with the global analytical potential energy surface to investigate the causes for the extraordinarily large kinetic energy release. Based on the detailed dynamical calculations, it was found that the strained bending forces at the transition state and strengthening of the do bond from double to triple bond character were mainly responsible for such a significant kinetic energy release. In addition, the dissociation products H-2 and CHO+ ion were found to be rotationally excited in the trajectory calculations. This was attributed to the asymmetry of the transition state and the release of asymmetric bending forces. Also, the bending vibrational modes of CHO+ and the H, stretching mode, which are coupled with the bending coordinates, were found to be moderately excited. (C) 1996 American Institute of Physics. [References: 92]
机译:测量了在CH2OH +的单分子解离中生成的CHO +的质量分析离子动能(MIKE)光谱。根据以前开发的算法通过分析光谱来评估动能释放分布(KERD)。由分布评估的平均动能释放非常大,为1.63 eV,相当于反应反向屏障的75%。构造了一个全局分析势能面,以便表示实验能量学,并重现了从头算势能面的各种特征。用全局分析势能面进行了经典轨迹计算,以研究动能释放过大的原因。根据详细的动力学计算,发现过渡态的应变弯曲力和do键从双键到三键特性的增强是造成如此大的动能释放的主要原因。此外,在轨迹计算中发现离解产物H-2和CHO +离子被旋转激发。这归因于过渡状态的不对称和不对称弯曲力的释放。另外,发现与弯曲坐标相结合的CHO +的弯曲振动模式和H,拉伸模式被适度地激发。 (C)1996年美国物理研究所。 [参考:92]

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