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Quantum dynamics of the O plus OH - H+O-2 reaction at low temperatures

机译:低温下O + OH-> H + O-2反应的量子动力学

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We report quantum dynamics calculations of the O+OH -> H+O-2 reaction on two different representations of the electronic ground state potential energy surface (PES) using a time-independent quantum formalism based on hyperspherical coordinates. Calculations show that several excited vibrational levels of the product O-2 molecule are populated in the reaction. Rate coefficients evaluated using both PESs were found to be very sensitive to the energy resolution of the reaction probability, especially at temperatures lower than 100 K. It is found that the rate coefficient remains largely constant in the temperature range of 10-39 K, in agreement with the conclusions of a recent experimental study [Carty , J. Phys. Chem. A 110, 3101 (2006)]. This is in contrast with the time-independent quantum calculations of Xu [J. Chem. Phys. 127, 024304 (2007)] which, using the same PES, predicted nearly two orders of magnitude drop in the rate coefficient value from 39 to 10 K. Implications of our findings to oxygen chemistry in the interstellar medium are discussed.
机译:我们报告了使用基于超球坐标的时间独立量子形式学对电子基态势能面(PES)的两种不同表示形式的O + OH-> H + O-2反应的量子动力学计算。计算表明在反应中存在产物O-2分子的几个激发振动能级。发现使用两种PES评估的速率系数对反应概率的能量分辨率非常敏感,尤其是在低于100 K的温度下。发现在10-39 K的温度范围内,速率系数在很大程度上保持恒定。与最近一项实验研究的结论一致[Carty,J. Phys。化学A 110,3101(2006)]。这与徐的时间无关的量子计算是相反的。化学物理127,024304(2007)],它使用相同的PES预测速率系数值将从39 K下降到10 K近两个数量级。讨论了我们的发现对星际介质中氧化学的影响。

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