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首页> 外文期刊>The Journal of Chemical Physics >Path integral calculation of thermal rate constants within the quantum instanton approximation:Application to the H+CH_4- H_2+CH_3 hydrogen abstraction reaction in full cartesian space
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Path integral calculation of thermal rate constants within the quantum instanton approximation:Application to the H+CH_4- H_2+CH_3 hydrogen abstraction reaction in full cartesian space

机译:量子瞬间近似内热速率常数的路径积分计算:在全笛卡尔空间中H + CH_4-> H_2 + CH_3氢提取反应中的应用

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摘要

The quantum instaton approximation for thermal rate constants of chemical reactions [Miller,Zhao,Ceotto,and Yang,J.Chem.Phys.119,1329 (2003)],which is modeled after the earlier semiclassical instanton approach,is applied to the hydrogen abstraction reaction from methane by a hydrogen atom,H+CH_4->H_2+CH_3,using a modified and recalibrated version of the Jordan-Gilbert potential surface.The quantum instanton rate is evaluated using path integral Monte Carlo approaches based on the recently proposed implementation schemes [Yamamoto and Miller,J.Chem.Phys.120,3086 (2004)].The calcualtions were carried out using the Cartesian coordinates of all the atoms (thus involving 18 degrees of freedom),thereby taking explicit account of rotational effects of the whole system and also allowing the equivalent treatment of the four methane hydrogens.To achieve such a treatment,we present extended forms of the path integral estimators for relevant quantities that may be used for general N-atom systems with any generalized reaction coordiantes.The quantum instanton rates thus obtained for the temperature range T =200-2000 K show good agreement with available experimental data,which gives support to the accuracy of the underlying potential surface used.
机译:化学反应的热速率常数的量子静态近似[Miller,Zhao,Ceotto和Yang,J.Chem.Phys.119,1329(2003)],是根据较早的半经典瞬时子方法建模的,它应用于氢使用约旦-吉尔伯特势能面的修正和重新校准版本,由氢原子H + CH_4-> H_2 + CH_3从甲烷中进行抽象反应。基于最近提出的实现方法,使用路径积分蒙特卡罗方法评估了量子瞬时速率方案[Yamamoto and Miller,J.Chem.Phys.120,3086(2004)]。计算是使用所有原子的笛卡尔坐标(因此涉及18个自由度)进行的,因此明确考虑了为了实现这种处理,我们提出了可用于一般N原子系统的相关量的路径积分估计器的扩展形式。这样在温度T = 200-2000 K范围内获得的量子瞬时速率与可用的实验数据显示出良好的一致性,这为所使用的潜在势能面的准确性提供了支持。

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